Techniques for signaling user equipment capability for PDCCH repetition
UEs signaling their capabilities for PDCCH repetitions allow networks to configure optimal reception, enhancing reliability and diversity by aligning with UE capabilities, addressing the challenge of unknown UE capabilities in PDCCH reception.
Patent Information
- Application Number
- JP2023540961
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-01-11
- Filing Date
- 2022-01-12
- Publication Date
- 2026-01-07
- Estimated Expiration
- 2042-01-12
AI Technical Summary
Wireless communication systems face challenges in determining which user equipment (UEs) are capable of receiving and decoding Physical Downlink Control Channel (PDCCH) repetitions, such as Single Frequency Network (SFN), inter-slot, and intra-slot PDCCH repetitions, leading to reduced reliability and transmit diversity due to network's unawareness of UE capabilities.
UEs signal their capabilities for receiving multiple PDCCH repetitions through UE capability reports, indicating support for SFN, inter-slot, and/or intra-slot PDCCH repetitions, along with associated parameters, allowing the network to configure appropriate reception and monitoring.
Enables the network to communicate effectively via PDCCH repetitions, enhancing reliability and transmit diversity by aligning configurations with UE capabilities, thus improving wireless communication performance.
Smart Images

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Abstract
Description
[Technical Field]
[0001] cross reference
[0001] This patent application claims the benefit of U.S. Provisional Patent Application No. 63 / 136,297, filed January 12, 2021, by KHOSHNEVISAN et al., entitled "TECHNIQUES FOR SIGNALING USER EQUIPMENT CAPABILITY FOR PDCCH REPETITION," and U.S. Patent Application No. 17 / 573,252, filed January 11, 2022, by KHOSHNEVISAN et al., entitled "TECHNIQUES FOR SIGNALING USER EQUIPMENT CAPABILITY FOR PDCCH REPETITION," each of which is assigned to the assignee of the present application.
[0002] The following relates to wireless communications, including techniques for signaling user equipment capabilities for Physical Downlink Control Channel (PDCCH) repetition. [Background technology]
[0003] Wireless communication systems are widely deployed to provide various types of communication content, such as voice, video, packet data, messaging, and broadcasts. These systems may be capable of supporting communication with multiple users by sharing available system resources (e.g., time, frequency, and power). Examples of such multiple-access systems include fourth-generation (4G) systems, such as Long Term Evolution (LTE), LTE-Advanced (LTE-A), or LTE-A Pro systems, and fifth-generation (5G) systems, sometimes referred to as New Radio (NR) systems. These systems may employ technologies such as code division multiple access (CDMA), time division multiple access (TDMA), frequency division multiple access (FDMA), orthogonal frequency division multiple access (OFDMA), or discrete Fourier transform spread orthogonal frequency division multiplexing (DFT-S-OFDM). A wireless multiple-access communication system may include one or more base stations or one or more network access nodes, each simultaneously supporting communication for multiple communication devices, sometimes known as user equipment (UE).
[0004]
[0004] Some wireless systems may support repetition of various signals, such as control information or data. For example, multiple repetitions of a Physical Downlink Control Channel (PDCCH) transmission may be transmitted within a single slot (e.g., intra-slot PDCCH repetition), across multiple slots (e.g., inter-slot PDCCH repetition), or both. As another example, in the context of a single frequency network (SFN), a base station may transmit multiple linked (e.g., related) PDCCH transmissions, where each PDCCH transmission is associated with two transmission configuration indicators (TCIs). Summary of the Invention
[0005] The described techniques relate to improved methods, systems, devices, and apparatuses that support techniques for signaling user equipment capabilities for physical downlink control channel (PDCCH) repetition. Generally, the described techniques provide signaling and other techniques that enable a UE to inform a network that the UE is capable of supporting reception of single frequency network (SFN) PDCCH transmissions, inter-slot PDCCH repetitions, or intra-slot PDCCH repetitions, or any combination thereof. In some aspects, a UE may indicate its capability to receive / decode multiple related downlink control channel transmissions using a UE capability report that indicates that the UE is capable of receiving multiple PDCCH repetitions, including SFN PDCCH transmissions, inter-slot PDCCH repetitions, and / or intra-slot PDCCH repetitions. Based on the indicated UE capability, the UE may receive a configuration for receiving multiple related PDCCH transmissions and may monitor the PDCCH according to the configuration.
[0006] A method for wireless communication in a UE is described. The method may include transmitting, to a base station, a UE capability for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more control resource sets (CORESETs); receiving a configuration for receiving the plurality of related downlink control channel transmissions from the base station based on the transmission of the UE capability; and monitoring the downlink control channel according to the configuration.
[0007] An apparatus for wireless communication in a UE is described. The apparatus may include at least one processor, a memory (e.g., operatively, communicatively, functionally, electronically, or electrically) coupled to the at least one processor, and instructions stored in the memory. The instructions may be executable by the at least one processor to cause the apparatus to: transmit, to a base station, a UE capability for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and be associated with one or more CORESETs; receive a configuration for receiving the plurality of related downlink control channel transmissions from the base station based on the transmission of the UE capability; and monitor the downlink control channel in accordance with the configuration.
[0008] Another apparatus for wireless communication in a UE is described. The apparatus may include: means for transmitting, to a base station, UE capabilities to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, associated with one or more CORESETs; means for receiving, from the base station based on the transmission of the UE capabilities, a configuration for receiving the plurality of related downlink control channel transmissions; and means for monitoring the downlink control channel in accordance with the configuration.
[0009] A non-transitory computer-readable medium storing code for wireless communication in a UE is described. The code may include instructions executable by at least one processor to: transmit, to a base station, UE capabilities for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, associated with one or more CORESETs; receive from the base station a configuration for receiving the plurality of related downlink control channel transmissions based on the transmission of the UE capabilities; and monitor the downlink control channel according to the configuration.
[0010]
[0010] Some examples of the methods, apparatus, and non-transitory computer-readable media described in this specification may further include an operation, feature, means, or instruction for transmitting, as part of the UE capabilities, an indication that the UE supports reception of multiple related downlink control channel transmissions that may be associated with three or more CORESETs, where the three or more CORESETs may be associated with a common bandwidth part (BWP), and where receiving the configuration may be based on the indication that the UE supports reception of multiple related downlink control channel transmissions that may be associated with three or more CORESETs.
[0011]
[0011] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, the UE capabilities indicate that the UE supports receiving inter-slot downlink control channel repetition, and the methods, apparatus, and non-transitory computer-readable media may include further operations, features, means, or instructions for receiving from the base station an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set in a first slot may be associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, and wherein the monitoring may be based on an indication of the first search space set, the second search space set, or both.
[0012]
[0012] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include, as part of the UE capabilities, an operation, feature, means, or instruction for transmitting an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, which may be decodable by the UE, wherein receiving the indication of the first search space set, the second search space set, or both may be based on the quantity of slots.
[0013]
[0013] Some examples of the methods, apparatus, and non-transitory computer-readable media described in this specification may further include, as part of the UE capabilities, an operation, feature, means, or instruction for the UE to transmit an indication of the maximum number of slots that it supports for inter-slot downlink control channel repetition in accordance with the search space set periodicity of the one or more linked search space sets.
[0014]
[0014] In some examples of the methods, apparatus, and non-transitory computer-readable medium described herein, the UE capabilities indicate that the UE supports receiving intra-slot downlink control channel repetition, and the methods, apparatus, and non-transitory computer-readable medium may include further operations, features, means, or instructions for receiving from the base station an indication of a first search space set and a second search space set associated with the first search space set, where a first monitoring occasion of the first search space set may be associated with a second monitoring occasion of the second search space set, where both the first monitoring occasion and the second monitoring occasion may be located in a common slot, and where the monitoring may be based on an indication of the first search space set, the second search space set, or both.
[0015]
[0015] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for transmitting, as part of a UE capability, an indication that the UE supports reception of downlink control channel transmissions that may be received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and wherein receiving the indication of the first search space set, the second search space set, or both may be based on an indication that the UE supports reception of downlink control channel transmissions that may be received within a first monitoring occasion of the first search space set, a second monitoring occasion of the second search space set, or both.
[0016]
[0016] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for transmitting, as part of the UE capabilities, an indication of a quantity of downlink control channel monitoring occasions in one or more slots that may be monitored by the UE, and receiving an indication of a first search space set and a second search space set associated with the first search space set from the base station based on the indication of the quantity of downlink control channel monitoring occasions, wherein the monitoring may be based on the indication of the first search space set, the second search space set, or both.
[0017]
[0017] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for sending, as part of the UE capabilities, an indication that the UE supports monitoring a set of UE-specific search space sets, a set of common search space sets, or both, and receiving from the base station an indication of a first search space set and a second search space set associated with the first search space set based on the indication that the UE supports monitoring a set of search space sets that may be associated with the UE, a set of common search space sets, or both, wherein the monitoring may be based on the indication of the first search space set, the second search space set, or both.
[0018]
[0018] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for transmitting, as part of a UE capability, an indication of a format for downlink control information (DCI) associated with intra-slot downlink control channel repetition, inter-slot downlink control channel repetition, or both, and receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set based on the indication of the format, wherein the monitoring may be based on the indication of the first search space set, the second search space set, or both.
[0019]
[0019] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include an operation, feature, means, or instruction for transmitting, as part of the UE capabilities, an indication that the UE supports receiving a first downlink control channel transmission associated with a first CORESET associated with a first set of parameters and a second downlink control channel transmission associated with the first downlink control channel transmission and associated with a second CORESET associated with a second set of parameters, wherein receiving the configuration may be based on the indication that the UE supports receiving the first downlink control channel transmission and the second downlink control channel transmission.
[0020]
[0020] In some examples of the methods, devices, and non-transitory computer-readable media described in this specification, the first set of parameters, the second set of parameters, or both, include a CORESET duration, a control channel element-resource element group (CCE-REG) mapping type, a precoding granularity, a CORESET pool index, or any combination thereof.
[0021] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, the first set of parameters may differ from the second set of parameters.
[0022]
[0022] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include an operation, feature, means, or instruction for transmitting, as part of the UE capabilities, an indication that the UE supports monitoring of a quantity of control channel candidates per span of resources, a quantity of CCEs per span of resources, or both, wherein receiving the configuration may be based on an indication of a quantity of control channel candidates per span of resources, a quantity of CCEs per span of resources, or both.
[0023]
[0023] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for transmitting, as part of the UE capabilities, an indication that the UE supports reception of multiple related downlink control channel transmissions within the same span of resources, within different spans of resources, or both, wherein receiving the configuration, monitoring the downlink control channel, or both, is based on the indication.
[0024]
[0024] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the methods, apparatus, and non-transitory computer-readable media may include further operations, features, means, or instructions for receiving, from the base station, an indication of CORESET including two transmission configuration indicator (TCI) states, wherein the monitoring may be based on the indication of CORESET.
[0025]
[0025] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the methods, apparatus, and non-transitory computer-readable media may include further operations, features, means, or instructions for transmitting, as part of the UE capabilities, an indication of the amount of CORESET in the BWP, wherein receiving the configuration may be based on the indication of the amount of CORESET in the BWP.
[0026]
[0026] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for receiving, from the base station based on monitoring, a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, wherein the first downlink control channel transmission and the second downlink control channel transmission may be transmitted based on a configuration.
[0027]
[0027] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, multiple related downlink control channel transmissions may be transmitted in accordance with fifth generation (5G) radio access technology, new radio (NR) access technology, or both.
[0028] A method for wireless communication in a base station is described. The method may include receiving, from a UE, a UE capability of the UE for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmission, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs; transmitting a configuration for transmitting the plurality of related downlink control channel transmissions to the UE based on the reception of the UE capability; and communicating with the UE via the downlink control channel in accordance with the configuration.
[0029] An apparatus for wireless communication in a base station is described. The apparatus may include at least one processor, a memory (e.g., operatively, communicatively, functionally, electronically, or electrically) coupled to the at least one processor, and instructions stored in the memory. The instructions may be executable by the at least one processor to cause the apparatus to: receive, from the UE, a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmission, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and be associated with one or more CORESETs; send, to the UE, a configuration for transmitting the plurality of related downlink control channel transmissions based on the reception of the UE capability; and communicate with the UE via the downlink control channel in accordance with the configuration.
[0030] Another apparatus for wireless communication in a base station is described. The apparatus may include: means for receiving, from the UE, a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmission, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs; means for transmitting, to the UE based on the reception of the UE capability, a configuration for transmitting the plurality of related downlink control channel transmissions; and means for communicating with the UE via the downlink control channel in accordance with the configuration.
[0031] A non-transitory computer-readable medium storing code for wireless communications in a base station is described. The code may include instructions executable by at least one processor to: receive, from a UE, a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and be associated with one or more CORESETs; send, to the UE, a configuration for transmitting the plurality of related downlink control channel transmissions based on the reception of the UE capability; and communicate with the UE via the downlink control channel in accordance with the configuration.
[0032]
[0032] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for receiving, as part of the UE capabilities, an indication that the UE supports reception of multiple related downlink control channel transmissions that may be associated with three or more CORESETs, where the three or more CORESETs may be associated with a common BWP, and where transmitting the configuration may be based on the indication that the UE supports reception of multiple related downlink control channel transmissions that may be associated with three or more CORESETs.
[0033]
[0033] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, the UE capabilities indicate that the UE supports receiving inter-slot downlink control channel repetition, and the methods, apparatus, and non-transitory computer-readable media may include further operations, features, means, or instructions for sending to the UE an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set in a first slot may be associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, and wherein communicating may be based on the indication of the first search space set, the second search space set, or both.
[0034]
[0034] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include, as part of the UE capabilities, an operation, feature, means, or instruction for receiving an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, which may be decodable by the UE, wherein transmitting the indication of the first search space set, the second search space set, or both may be based on the quantity of slots.
[0035]
[0035] Some examples of the methods, apparatus, and non-transitory computer-readable media described in this specification may further include, as part of the UE capabilities, operations, features, means, or instructions for the UE to receive an indication of the maximum number of slots that support one or more linked search space sets for inter-slot downlink control channel repetition in accordance with the search space set periodicity of the one or more linked search space sets.
[0036]
[0036] In some examples of the methods, apparatus, and non-transitory computer-readable medium described herein, the UE capabilities indicate that the UE supports receiving intra-slot downlink control channel repetition, and the methods, apparatus, and non-transitory computer-readable medium may include further operations, features, means, or instructions for sending to the UE an indication of a first search space set and a second search space set associated with the first search space set, where a first monitoring occasion of the first search space set may be associated with a second monitoring occasion of the second search space set, where both the first monitoring occasion and the second monitoring occasion may be located in a common slot, and where communicating may be based on the indication of the first search space set, the second search space set, or both.
[0037]
[0037] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for receiving, as part of a UE capability, an indication that the UE supports reception of downlink control channel transmissions that may be received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and wherein transmitting the indication of the first search space set, the second search space set, or both may be based on the indication that the UE supports reception of downlink control channel transmissions that may be received within a first monitoring occasion of the first search space set, a second monitoring occasion of the second search space set, or both.
[0038]
[0038] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for receiving, as part of the UE capabilities, an indication of a quantity of downlink control channel monitoring occasions in one or more slots that may be monitored by the UE, and sending an indication of a first search space set and a second search space set associated with the first search space set to the UE based on the indication of the quantity of downlink control channel monitoring occasions, wherein communicating with the UE may be based on the indication of the first search space set, the second search space set, or both.
[0039]
[0039] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for receiving, as part of the UE capabilities, an indication that the UE supports monitoring a set of UE-specific search space sets, a set of common search space sets, or both, and sending to the UE an indication of a first search space set and a second search space set associated with the first search space set based on the indication that the UE supports monitoring a set of search space sets that may be associated with the UE, a set of common search space sets, or both, wherein communicating with the UE may be based on the indication of the first search space set, the second search space set, or both.
[0040]
[0040] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for receiving, as part of a UE capability, an indication of a format for DCI associated with intra-slot downlink control channel repetition, inter-slot downlink control channel repetition, or both, and sending, to the UE, an indication of a first search space set and a second search space set associated with the first search space set based on the indication of the format, wherein communicating with the UE may be based on the indication of the first search space set, the second search space set, or both.
[0041]
[0041] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include operations, features, means, or instructions for receiving, as part of the UE capabilities, an indication that the UE supports receiving a first downlink control channel transmission associated with a first CORESET associated with a first set of parameters and a second downlink control channel transmission associated with the first downlink control channel transmission and associated with a second CORESET associated with a second set of parameters, wherein transmitting the configuration may be based on the indication that the UE supports receiving the first downlink control channel transmission and the second downlink control channel transmission.
[0042]
[0042] In some examples of the methods, apparatus, and non-transitory computer-readable media described in this specification, the first set of parameters, the second set of parameters, or both, include a CORESET duration, a CCE-REG mapping type, a precoding granularity, a CORESET pool index, or any combination thereof.
[0043] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, the first set of parameters may differ from the second set of parameters.
[0044]
[0044] Some examples of the methods, apparatus, and non-transitory computer-readable media described herein may further include an operation, feature, means, or instruction for receiving, as part of the UE capabilities, an indication that the UE supports monitoring of the quantity of control channel candidates per span of resources, the quantity of CCEs per span of resources, or both, wherein sending the configuration may be based on the indication of the quantity of control channel candidates per span of resources, the quantity of CCEs per span of resources, or both.
[0045]
[0045] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the methods, apparatus, and non-transitory computer-readable media may include further operations, features, means, or instructions for sending to the UE an indication of CORESET including two TCI states, wherein communicating may be based on the indication of CORESET.
[0046]
[0046] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the methods, apparatus, and non-transitory computer-readable media may further include operations, features, means, or instructions for receiving, as part of the UE capabilities, an indication of the amount of CORESET in the BWP, wherein transmitting the configuration may be based on the indication of the amount of CORESET in the BWP.
[0047]
[0047] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, communicating with the UE may include operations, features, means, or instructions for transmitting to the UE a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, where the first downlink control channel transmission and the second downlink control channel transmission may be transmitted based on a configuration.
[0048]
[0048] In some examples of the methods, apparatus, and non-transitory computer-readable media described herein, multiple related downlink control channel transmissions may be transmitted in accordance with 5G radio access technology, NR access technology, or both. [Brief explanation of the drawings]
[0049] [Figure 1]FIG. 1 illustrates an example of a wireless communication system that supports techniques for signaling user equipment capabilities for physical downlink control channel (PDCCH) repetition, according to aspects of the present disclosure. [Figure 2]
[0050] FIG. 1 illustrates an example of a wireless communication system that supports techniques for signaling user equipment capabilities for PDCCH repetition, according to aspects of the present disclosure. [Figure 3]
[0051] FIG. 1 illustrates an example of a process flow supporting techniques for signaling user equipment capabilities for PDCCH repetition, according to aspects of the present disclosure. [Figure 4]
[0052] 1 is a block diagram of a device that supports techniques for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 5] 1 is a block diagram of a device that supports techniques for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 6]
[0053] 1 is a block diagram of a communications manager that supports techniques for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 7]
[0054] FIG. 1 illustrates a diagram of a system including devices that support techniques for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 8]
[0055] 1 is a block diagram of a device that supports techniques for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 9] 1 is a block diagram of a device that supports techniques for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 10]
[0056] 1 is a block diagram of a communications manager that supports techniques for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 11]
[0057] FIG. 1 illustrates a diagram of a system including devices that support techniques for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 12]
[0058] 10 is a flowchart illustrating a method supporting a technique for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 13] 10 is a flowchart illustrating a method supporting a technique for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. [Figure 14] 10 is a flowchart illustrating a method supporting a technique for signaling user equipment capabilities for PDCCH repetition, according to an aspect of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0050]
[0059] Some wireless systems may support repetition of various signals, such as control information or data. For example, multiple repetitions of a physical downlink control channel (PDCCH) transmission may be transmitted within a single slot (e.g., intra-slot PDCCH repetition), across multiple slots (e.g., inter-slot PDCCH repetition), or both. As another example, in the context of a single frequency network (SFN), a base station may transmit multiple linked (e.g., related) PDCCH transmissions, where each PDCCH transmission is associated with two transmission configuration indicators (TCIs). In these cases, a user equipment (UE) may receive and combine multiple related PDCCH transmissions (e.g., PDCCH repetitions), which may serve to improve system reliability and also provide transmit diversity for protection against interference.
[0051]
[0060] However, not all UEs and other wireless devices may have the capability to receive and / or decode inter-slot PDCCH repetition, intra-slot PDCCH repetition, SFN PDCCH transmission, or any combination thereof. Moreover, some UEs may receive and / or decode an associated PDCCH transmission according to one configuration but be able to receive and / or decode an associated PDCCH transmission according to another configuration (e.g., a UE may support intra-slot PDCCH repetition but not inter-slot PDCCH repetition). Thus, in some wireless communication systems, the network may not know which UEs are capable of supporting SFN PDCCH transmission, inter-slot PDCCH repetition, or intra-slot PDCCH repetition. Thus, the network may refrain from communicating with the UE via SFN PDCCH transmission, inter-slot PDCCH repetition, or intra-slot PDCCH repetition, which may reduce reliability of wireless communications and reduce transmit diversity in the wireless communication system.
[0052]
[0061] Thus, the techniques described herein may provide signaling and other techniques that enable a UE to inform the network that the UE is capable of supporting reception of SFN PDCCH transmissions, inter-slot PDCCH repetitions, or intra-slot PDCCH repetitions, or any combination thereof. In some aspects, a UE may indicate an ability to receive / decode multiple related downlink control channel transmissions using a UE capability report that indicates that the UE is capable of receiving multiple PDCCH repetitions, including SFN PDCCH transmissions, inter-slot PDCCH repetitions, and / or intra-slot PDCCH repetitions. Based on the indicated UE capability, the UE may receive a configuration for receiving multiple related PDCCH transmissions and may monitor the PDCCH according to the configuration.
[0053]
[0062] In some implementations, in addition to indicating the types of related PDCCH transmissions that are supported, the UE capabilities transmitted to the network may indicate additional parameters associated with each of the supported configurations. For example, the UE capabilities may indicate the maximum amount of slots between related PDCCH transmissions, whether the search space sets for the related PDCCH transmissions may overlap in time / frequency, the maximum number of monitoring occasions in a single slot that it may support, the supported downlink control information (DCI) formats for the related PDCCH transmissions, whether the control resource sets (CORESETs) for the related PDCCH transmissions may be the same or different, etc.
[0054]
[0063] Aspects of the present disclosure are initially described in the context of a wireless communication system. Additional aspects of the present disclosure are described in the context of example process flows. Aspects of the present disclosure are further illustrated by and described with reference to apparatus diagrams, system diagrams, and flowcharts relating to techniques for signaling user equipment capabilities for PDCCH repetition.
[0055]
[0064] 1 illustrates an example of a wireless communication system 100 that supports techniques for signaling user equipment capabilities for PDCCH repetition according to aspects of the present disclosure. The wireless communication system 100 may include one or more base stations 105, one or more UEs 115, and a core network 130. In some examples, the wireless communication system 100 may be a Long Term Evolution (LTE) network, an LTE-Advanced (LTE-A) network, an LTE-A Pro network, or a New Radio (NR) network. In some examples, the wireless communication system 100 may support enhanced broadband communications, ultra-reliable (e.g., mission-critical) communications, low-latency communications, communications with low-cost and low-complexity devices, or any combination thereof.
[0056]
[0065] The base stations 105 may be dispersed throughout a geographic area to form the wireless communication system 100 and may be devices of different configurations or with different capabilities. The base stations 105 and the UEs 115 may communicate wirelessly via one or more communication links 125. Each base station 105 may provide a coverage area 110 over which the UEs 115 and the base station 105 may establish one or more communication links 125. The coverage area 110 may be an example of a geographic area over which the base stations 105 and the UEs 115 may support communication of signals according to one or more radio access technologies.
[0057]
[0066] The UEs 115 may be dispersed throughout the coverage area 110 of the wireless communication system 100, and each UE 115 may be fixed, mobile, or both at different times. The UEs 115 may be devices of different forms or with different capabilities. Some example UEs 115 are shown in FIG. 1. The UEs 115 described herein may be capable of communicating with various types of devices, such as other UEs 115, base stations 105, or network equipment (e.g., core network nodes, relay devices, integrated access and backhaul (IAB) nodes, or other network equipment), as shown in FIG. 1.
[0058]
[0067] The base stations 105 may communicate with the core network 130, with each other, or both. For example, the base stations 105 may interface with the core network 130 through one or more backhaul links 120 (e.g., via an S1, N2, N3, or other interface). The base stations 105 may communicate with each other over the backhaul links 120 (e.g., via an X2, Xn, or other interface) either directly (e.g., directly between the base stations 105) or indirectly (e.g., via the core network 130), or both. In some examples, the backhaul links 120 may be or include one or more wireless links.
[0059]
[0068] One or more of the base stations 105 described herein may include or be referred to by those skilled in the art as a base transceiver station, radio base station, access point, radio transceiver, Node B, eNode B (eNB), Next Generation Node B or GigaNode B (any of which may be referred to as gNB), Home Node B, Home eNode B, or other suitable terminology.
[0060]
[0069] The UE 115 may include or be referred to as a mobile device, a wireless device, a remote device, a handheld device, or a subscriber device, or some other suitable terminology, where a "device" may also be referred to as a unit, a station, a terminal, or a client, among other examples. The UE 115 may also include a cellular phone, a personal digital assistant (PDA), a multimedia / entertainment device (e.g., a radio, an MP3 player, or a video device), a camera, a game console, a navigation / positioning device (e.g., a GNSS (Global Navigation Satellite System) device based, for example, on GPS (Global Positioning System), Beidou, GLONASS, or Galileo, or a terrestrial-based device), a tablet computer, a laptop computer, a personal computer, a netbook, a smartbook, a personal computer, a smart device, a wearable device (e.g., a smart watch, smart clothing, smartphone, etc.), a smart home appliance, a smartwatch, a smart home appliance ... The UE 115 may include or may be referred to as a personal electronic device such as a smart watch, a smart phone, a smart device, a smart watch, a smart watchband, a smart jewelry (e.g., a smart ring, a smart bracelet), a drone, a robot / robotic device, a vehicle, a vehicle device, a meter (e.g., a parking meter, an electric meter, a gas meter, a water meter), a monitor, a gas pump, an appliance (e.g., a kitchen appliance, a washer, a dryer), a location tag, a medical / healthcare device, an implant, a sensor / actuator, a display, or any other suitable device configured to communicate over a wireless or wired medium. In some examples, the UE 115 may include or may be referred to as a Wireless Local Loop (WLL) station, an Internet of Things (IoT) device, an Internet of Everything (IoE) device, or a Machine Type Communication (MTC) device, among other examples, which may be implemented in various objects such as an appliance, a vehicle, a meter, among other examples.
[0061]
[0070] Some UEs 115, such as MTC or IoT devices, may be low-cost or low-complexity devices and may provide automated communication between machines (e.g., via machine-to-machine (M2M) communication). M2M communication or MTC may refer to data communication technologies that enable devices to communicate with each other or with the base station 105 without human intervention. In some examples, M2M communication or MTC may include communication from devices that incorporate sensors or meters to measure or capture information and relay that information to a central server or application program that can utilize the information or present the information to a human interacting with the program or application. Some UEs 115 may be designed to collect information or enable automated machine behavior. Examples of applications for MTC devices include smart metering, inventory monitoring, water level monitoring, equipment monitoring, healthcare monitoring, wildlife monitoring, weather and geological event monitoring, fleet management and tracking, remote security sensing, physical access control, and transaction-based business billing. In certain aspects, the techniques disclosed herein may be applicable to MTC or IoT UEs. MTC or IoT UE may include MTC / enhanced MTC (eMTC, also called CAT-M, Cat M1) UE, NB-IoT (also called CAT NB1) UE, and other types of UE. eMTC and NB-IoT may refer to future technologies that may evolve from or be based on these technologies. For example, eMTC may include FeMTC (further eMTC), eFeMTC (further extended eMTC), and mMTC (massive MTC), and NB-IoT may include eNB-IoT (enhanced NB-IoT) and FeNB-IoT (further extended NB-IoT).
[0062]
[0071] Wireless communication systems are widely deployed to provide various types of communication content, such as voice, video, packet data, messaging, broadcasts, and so on. These systems may be multiple-access systems capable of supporting communication with multiple users by sharing available system resources (e.g., time, frequency, and power). A wireless network, e.g., a wireless local area network (WLAN), such as a Wi-Fi® (e.g., Institute of Electrical and Electronics Engineers (IEEE) 802.11) network, may include an access point (AP) that may communicate with one or more wireless or mobile devices. The AP may be coupled to a network, such as the Internet, and may enable mobile devices to communicate over the network (or with other devices coupled to the access point). Wireless devices may communicate bidirectionally with network devices. For example, in a WLAN, a device may communicate with an associated AP via a downlink (e.g., a communication link from the AP to the device) and an uplink (e.g., a communication link from the device to the AP). A wireless personal area network (PAN), which may include a Bluetooth® connection, may provide short-range wireless connectivity between two or more paired wireless devices. For example, a wireless device such as a cellular phone may use wireless PAN communications to exchange information such as audio signals with a wireless headset. Components in a wireless communication system are coupled (e.g., operatively, communicatively, functionally, electronically, and / or electrically) with one another.
[0063]
[0072] The UEs 115 described herein may be capable of communicating with various types of devices, such as other UEs 115, which may act as relays at times, as shown in FIG. 1, as well as base stations 105 and network equipment, including macro eNBs or gNBs, small cell eNBs or gNBs, or relay base stations, among other examples.
[0064]
[0073] The UE 115 and the base station 105 may wirelessly communicate with each other via one or more communication links 125 via one or more carriers. The term “carrier” may refer to a set of radio frequency spectrum resources having a defined physical layer structure for supporting the communication link 125. For example, a carrier used for the communication link 125 may include a portion of a radio frequency spectrum band (e.g., a bandwidth portion (BWP)) operated according to one or more physical layer channels for a given radio access technology (e.g., LTE, LTE-A, LTE-A Pro, NR). Each physical layer channel may carry acquisition signaling (e.g., synchronization signals, system information), control signaling coordinating operation for the carrier, user data, or other signaling. The wireless communication system 100 may support communication with the UE 115 using carrier aggregation or multi-carrier operation. The UE 115 may be configured with multiple downlink component carriers and one or more uplink component carriers according to a carrier aggregation configuration. Carrier aggregation can be used with both frequency division duplex (FDD) and time division duplex (TDD) component carriers.
[0065]
[0074] In some examples (e.g., in a carrier aggregation configuration), a carrier may also have acquisition or control signaling that coordinates operation for other carriers. Carriers may be associated with frequency channels (e.g., Evolved Universal Mobile Telecommunications System Terrestrial Radio Access (E-UTRA) Absolute Radio Frequency Channel Numbers (EARFCNs)) and may be arranged according to a channel raster for discovery by UE 115. A carrier may be operated in a standalone mode, where initial acquisition and connection may be made by UE 115 via the carrier, or a carrier may be operated in a non-standalone mode, where a connection is established using a different carrier (e.g., of the same or different radio access technology).
[0066]
[0075] The communication links 125 shown in the wireless communication system 100 may include uplink transmissions from the UE 115 to the base station 105 or downlink transmissions from the base station 105 to the UE 115. A carrier may carry downlink or uplink communications (e.g., in FDD mode) or may be configured to carry downlink and uplink communications (e.g., in TDD mode).
[0067]
[0076] A carrier may be associated with a particular bandwidth of the radio frequency spectrum, and in some examples, the carrier bandwidth may be referred to as the carrier or the “system bandwidth” of the wireless communication system 100. For example, the carrier bandwidth may be one of several predetermined bandwidths (e.g., 1.4, 3, 5, 10, 15, 20, 40, or 80 megahertz (MHz)) for a carrier of a particular radio access technology. The devices of the wireless communication system 100 (e.g., the base station 105, the UE 115, or both) may have a hardware configuration that supports communication over a particular carrier bandwidth or may be configurable to support communication over one of a set of carrier bandwidths. In some examples, the wireless communication system 100 may include a base station 105 or a UE 115 that supports simultaneous communication via carriers associated with multiple carrier bandwidths. In some examples, each served UE 115 may be configured to operate over a portion (e.g., a sub-band, BWP) or all of the carrier bandwidth.
[0068]
[0077] A signal waveform transmitted over a carrier may be composed of multiple subcarriers (e.g., using a multicarrier modulation (MCM) technique such as orthogonal frequency division multiplexing (OFDM) or discrete Fourier transform extended OFDM (DFT-S-OFDM)). In a system employing an MCM technique, a resource element may consist of one symbol period (e.g., the duration of one modulation symbol) and one subcarrier, where the symbol period and the subcarrier spacing have an inverse relationship. The number of bits carried by each resource element may depend on the modulation scheme (e.g., the order of the modulation scheme, the coding rate of the modulation scheme, or both). Thus, the more resource elements and the higher the order of the modulation scheme received by the UE 115, the higher the data rate for the UE 115 may be. Wireless communication resources may refer to a combination of radio frequency spectrum resources, time resources, and spatial resources (e.g., spatial layers or beams), and the use of multiple spatial layers may further increase the data rate or data integrity for communications with the UE 115.
[0069]
[0078] The time interval for the base station 105 or the UE 115 may be, for example, T s =1 / (Δf max N f ) seconds, where Δf max may represent the maximum supported subcarrier spacing, and N f may represent the maximum supported discrete Fourier transform (DFT) size. The communication resource time intervals may be organized according to radio frames, each having a specified duration (e.g., 10 milliseconds (ms)). Each radio frame may be identified by a system frame number (SFN) (e.g., ranging from 0 to 1023).
[0070]
[0079] Each frame may include multiple consecutively numbered subframes or slots, and each subframe or slot may have the same duration. In some examples, a frame may be divided into subframes (e.g., in the time domain), and each subframe may be further divided into several slots. Alternatively, each frame may include a variable number of slots, and the number of slots may depend on the subcarrier spacing. Each slot may include several symbol periods (e.g., depending on the length of a cyclic prefix prepended to each symbol period). In some wireless communications systems 100, a slot may be further divided into multiple minislots containing one or more symbols. Excluding the cyclic prefix, each symbol period may include one or more (e.g., N f The duration of a symbol period may depend on the subcarrier spacing or the frequency operating band.
[0071]
[0080] A subframe, slot, minislot, or symbol may be the smallest scheduling unit (e.g., in the time domain) of the wireless communication system 100 and may be referred to as a transmission time interval (TTI). In some examples, the TTI duration (e.g., the number of symbol periods in a TTI) may be variable. Additionally or alternatively, the smallest scheduling unit of the wireless communication system 100 may be dynamically selected (e.g., in a burst of shortened TTIs (sTTIs)).
[0072]
[0081] Physical channels may be multiplexed on carriers according to various techniques. Physical control channels and physical data channels may be multiplexed on downlink carriers using, for example, one or more of a time division multiplexing (TDM) technique, a frequency division multiplexing (FDM) technique, or a hybrid TDM-FDM technique. A control region (e.g., a control resource set (CORESET)) for a physical control channel may be defined by several symbol periods and may span the system bandwidth of the carrier or a subset of the system bandwidth. One or more control regions (e.g., CORESET) may be configured for a set of UEs 115. For example, one or more of the UEs 115 may monitor or search the control region for control information according to one or more search space sets, and each search space set may include one or more control channel candidates at one or more aggregation levels configured in a cascaded manner. The aggregation level of the control channel candidates may refer to several control channel resources (e.g., control channel elements (CCEs)) associated with coded information for a control information format having a given payload size. The search space sets may include a common search space set configured for sending control information to multiple UEs 115 and a UE-specific search space set for sending control information to a specific UE 115.
[0073]
[0082] In some examples, the base stations 105 are mobile and may therefore provide communication coverage to moving geographic coverage areas 110. In some examples, different geographic coverage areas 110 associated with different technologies may overlap, but the different geographic coverage areas 110 may be supported by the same base station 105. In other examples, overlapping geographic coverage areas 110 associated with different technologies may be supported by different base stations 105. The wireless communication system 100 may include a heterogeneous network in which different types of base stations 105 provide coverage to various geographic coverage areas 110, for example, using the same or different radio access technologies.
[0074]
[0083] The wireless communication system 100 may be configured to support ultra-reliable or low-latency communications, or various combinations thereof. For example, the wireless communication system 100 may be configured to support ultra-reliable low-latency communications (URLLC) or mission-critical communications. The UE 115 may be designed to support ultra-reliable, low-latency, or critical functions (e.g., mission-critical functions). Ultra-reliable communications may include private or group communications and may be supported by one or more mission-critical services, such as mission-critical push-to-talk (MCPTT), mission-critical video (MCVideo), or mission-critical data (MCData). Support for mission-critical functions may include service prioritization, and the mission-critical services may be used for public safety or general commercial applications. The terms ultra-reliable, low-latency, mission-critical, and ultra-reliable low-latency may be used interchangeably herein.
[0075]
[0084] In some examples, the UE 115 may also be able to communicate directly with other UEs 115 over a device-to-device (D2D) communication link 135 (e.g., using a peer-to-peer (P2P) or D2D protocol). One or more UEs 115 utilizing D2D communication may be within the geographic coverage area 110 of the base station 105. Other UEs 115 in such a group may be outside the geographic coverage area 110 of the base station 105 or may otherwise be unable to receive transmissions from the base station 105. In some examples, a group of UEs 115 communicating via D2D communication may utilize a one-to-many (1:M) system in which each UE 115 transmits to every other UE 115 in the group. In some examples, the base station 105 facilitates scheduling of resources for D2D communication. In other cases, D2D communication occurs between UEs 115 without the involvement of the base station 105.
[0076]
[0085] The core network 130 may provide user authentication, access authorization, tracking, Internet Protocol (IP) connectivity, and other access, routing, or mobility functions. The core network 130 may be an evolved packet core (EPC) or 5G core (5GC) that may include at least one control plane entity (e.g., a mobility management entity (MME), an access and mobility management function (AMF)) that manages access and mobility, and at least one user plane entity (e.g., a serving gateway (S-GW), a packet data network (PDN) gateway (P-GW), or a user plane function (UPF)) that routes packets or interconnections to external networks. The control plane entity may manage non-access stratum (NAS) functions, such as mobility, authentication, and bearer management, for UEs 115 served by base stations 105 associated with the core network 130. User IP packets may be forwarded through the user plane entity, which may provide IP address allocation and other functions. The user plane entities may be connected to IP services 150 for one or more network operators. The IP services 150 may include access to the Internet, intranet(s), IP Multimedia Subsystem (IMS), or packet-switched streaming services.
[0077]
[0086] Some of the network devices, such as the base station 105, may include sub-components, such as an access network entity 140, which may be an example of an access node controller (ANC). Each access network entity 140 may communicate with the UE 115 through one or more other access network transmitting entities 145, which may be referred to as a radio head, a smart radio head, or a transmit / receive point (TRP). Each access network transmitting entity 145 may include one or more antenna panels. In some configurations, various functions of each access network entity 140 or base station 105 may be distributed across various network devices (e.g., radio heads and ANCs) or integrated into a single network device (e.g., the base station 105).
[0078]
[0087] The wireless communication system 100 may typically operate using one or more frequency bands in the range of 300 megahertz (MHz) to 300 gigahertz (GHz). Generally, the 300 MHz to 3 GHz region is known as the ultra-high frequency (UHF) region or decimeter band because wavelengths range from approximately 1 decimeter to 1 meter in length. Although UHF waves may be blocked or redirected by buildings and environmental features, the waves may penetrate structures sufficiently for a macrocell to provide service to UEs 115 located indoors. Transmission of UHF waves may be associated with smaller antennas and shorter distances (e.g., less than 100 kilometers) compared to transmissions using smaller frequencies and longer waves in the high frequency (HF) or very high frequency (VHF) portions of the spectrum below 300 MHz.
[0079]
[0088] The wireless communication system 100 may utilize both licensed and unlicensed radio frequency spectrum bands. For example, the wireless communication system 100 may employ license-assisted access (LAA), LTE unlicensed (LTE-U) radio access technology, or NR technology in an unlicensed band, such as the 5 GHz Industrial, Scientific, and Medical (ISM) band. When operating in an unlicensed radio frequency spectrum band, devices such as the base station 105 and the UE 115 may employ carrier sensing for collision detection and avoidance. In some examples, operation in an unlicensed band may be based on a carrier aggregation configuration with component carriers operating in a licensed band (e.g., LAA). Operation in an unlicensed spectrum may include downlink transmissions, uplink transmissions, P2P transmissions, or D2D transmissions, among other examples.
[0080]
[0089] The base station 105 or the UE 115 may be equipped with multiple antennas that can be used to employ techniques such as transmit diversity, receive diversity, multiple-input multiple-output (MIMO) communications, or beamforming. The antennas of the base station 105 or the UE 115 may be located in one or more antenna arrays or antenna panels that can support MIMO operation or transmit or receive beamforming. For example, one or more base station antennas or antenna arrays may be co-located in an antenna assembly, such as an antenna tower. In some examples, antennas or antenna arrays associated with the base station 105 may be located in various geographic locations. The base station 105 may have an antenna array with several rows and columns of antenna ports that the base station 105 can use to support beamforming of communications with the UE 115. Similarly, the UE 115 may have one or more antenna arrays that can support various MIMO or beamforming operations. Additionally or alternatively, the antenna panel may support radio frequency beamforming for signals transmitted through the antenna ports.
[0081]
[0090] The base station 105 or UE 115 may use MIMO communications to exploit multipath signal propagation and increase spectral efficiency by transmitting or receiving multiple signals via different spatial layers. Such techniques are sometimes referred to as spatial multiplexing. Multiple signals may be transmitted by a transmitting device, for example, via different antennas or different combinations of antennas. Similarly, multiple signals may be received by a receiving device via different antennas or different combinations of antennas. Each of the multiple signals may be referred to as a separate spatial stream and may carry bits associated with the same data stream (e.g., the same codeword) or different data streams (e.g., different codewords). Different spatial layers may be associated with different antenna ports used for channel measurement and reporting. MIMO techniques include single-user MIMO (SU-MIMO), in which multiple spatial layers are transmitted to the same receiving device, and multi-user MIMO (MU-MIMO), in which multiple spatial layers are transmitted to multiple devices.
[0082]
[0091] Beamforming, sometimes referred to as spatial filtering, directional transmission, or directional reception, is a signal processing technique that may be used at a transmitting or receiving device (e.g., base station 105, UE 115) to shape or steer an antenna beam (e.g., transmit beam, receive beam) along a spatial path between the transmitting and receiving devices. Beamforming may be achieved by combining signals communicated via antenna elements of an antenna array such that some signals propagating in a particular orientation relative to the antenna array experience constructive interference and others experience destructive interference. Adjustment of signals communicated via antenna elements may include the transmitting or receiving device applying an amplitude offset, a phase offset, or both to signals carried via the antenna element associated with the device. The adjustment associated with each of the antenna elements may be defined by a beamforming weight set associated with a particular orientation (e.g., relative to the antenna array of the transmitting or receiving device, or to some other orientation).
[0083]
[0092] The base station 105 or the UE 115 may use beam sweeping techniques as part of a beamforming operation. For example, the base station 105 may use multiple antennas or antenna arrays (e.g., antenna panels) to perform a beamforming operation for directional communication with the UE 115. Some signals (e.g., synchronization signals, reference signals, beam selection signals, or other control signals) may be transmitted multiple times in different directions by the base station 105. For example, the base station 105 may transmit signals according to different beamforming weight sets associated with different transmission directions. The transmissions in different beam directions may be used (e.g., by a transmitting device such as the base station 105 or by a receiving device such as the UE 115) to identify beam directions for subsequent transmission or reception by the base station 105.
[0084]
[0093] Some signals, such as data signals associated with a particular receiving device, may be transmitted by the base station 105 in a single beam direction (e.g., a direction associated with a receiving device such as the UE 115). In some examples, the beam direction associated with a transmission along a single beam direction may be determined based on signals transmitted in one or more beam directions. For example, the UE 115 may receive one or more of the signals transmitted by the base station 105 in different directions and may report to the base station 105 an indication of the signal that the UE 115 received with the best or otherwise acceptable signal quality.
[0085]
[0094] In some examples, transmission by a device (e.g., by the base station 105 or the UE 115) may be performed using multiple beam directions, and the device may use a combination of digital precoding or radio frequency beamforming to generate a composite beam for transmission (e.g., from the base station 105 to the UE 115). The UE 115 may report feedback indicating precoding weights for one or more beam directions, where the feedback may correspond to a configured number of beams across the system bandwidth or one or more subbands. The base station 105 may transmit a reference signal (e.g., a cell-specific reference signal (CRS), a channel state information reference signal (CSI-RS)), which may be precoded or ampliconed. The UE 115 may provide feedback for beam selection, which may be a precoding matrix indicator (PMI) or codebook-based feedback (e.g., a multi-panel type codebook, a linear combination type codebook, a port selection type codebook). Although these techniques have been described with respect to signals transmitted in one or more directions by the base station 105, the UE 115 may employ similar techniques to transmit a signal multiple times in different directions (e.g., to identify a beam direction for subsequent transmission or reception by the UE 115) or to transmit a signal in a single direction (e.g., to transmit data to a receiving device).
[0086]
[0095] A receiving device (e.g., UE 115) may attempt multiple receive configurations (e.g., directional listening) when receiving various signals from the base station 105, such as synchronization signals, reference signals, beam selection signals, or other control signals. For example, the receiving device may attempt multiple receive directions by receiving via different antenna subarrays, by processing received signals according to different antenna subarrays, by receiving according to different receive beamforming weight sets (e.g., different directional listening weight sets) applied to signals received at multiple antenna elements of the antenna array, or by processing received signals according to different receive beamforming weight sets applied to signals received at multiple antenna elements of the antenna array, any of which may be referred to as “listening” according to different receive configurations or receive directions. In some examples, the receiving device may use a single receive configuration to receive along a single beam direction (e.g., when receiving a data signal). A single receiving configuration may be aligned in a beam direction determined based on listening along different receiving configuration directions (e.g., a beam direction determined to have the highest signal strength, highest signal-to-noise ratio (SNR), or otherwise acceptable signal quality based on listening along multiple beam directions).
[0087]
[0096] The wireless communication system 100 may be a packet-based network operating according to a layered protocol stack. In the user plane, communications at the bearer or Packet Data Convergence Protocol (PDCP) layer may be IP-based. The Radio Link Control (RLC) layer may perform packet segmentation and reassembly to communicate over logical channels. The Medium Access Control (MAC) layer may perform priority handling and multiplexing of logical channels onto transport channels. The MAC layer may also use error detection techniques, error correction techniques, or both to support retransmissions at the MAC layer to improve link efficiency. In the control plane, the Radio Resource Control (RRC) protocol layer may provide establishment, configuration, and maintenance of an RRC connection between the UE 115 and the base station 105 or core network 130, which supports radio bearers for user plane data. In the physical layer, transport channels may be mapped to physical channels.
[0088]
[0097] The UE 115 and the base station 105 may support retransmission of data to increase the likelihood that the data is successfully received. Hybrid Automatic Repeat Request (HARQ) feedback is one technique for increasing the likelihood that data is accurately received over the communication link 125. HARQ may include a combination of error detection (e.g., using a cyclic redundancy check (CRC)), forward error correction (FEC), and retransmission (e.g., automatic repeat request (ARQ)). HARQ may improve throughput at the MAC layer in poor radio conditions (e.g., low signal-to-noise conditions). In some examples, a device may support same-slot HARQ feedback, where the device may provide HARQ feedback in a particular slot for data received in a previous symbol in that slot. In other cases, the device may provide HARQ feedback in a subsequent slot or according to some other time interval.
[0089]
[0098] In some aspects, a UE 115 of the wireless communication system 100 may be configured with up to three CORESETs within a given BWP. A CORESET may include one or more TCI states for PDCCH repetitions and may be associated with a quantity of resource blocks (RBs) in the frequency domain and a quantity of symbols or other TTIs in the time domain (e.g., a quantity of OFDM symbols). In some aspects, a CORESET configured in a UE 115 may be associated with a CCE resource element group (CCE-REG) mapping type (e.g., a CCE-REG bundle mapping type), a precoding granularity, an identifier associated with scrambling for a PDCCH demodulation reference signal (DMRS) (e.g., a scrambling identifier), coded bits of downlink control information (DCI) content, or any combination thereof.
[0090]
[0099] In some aspects, the UE 115 may be configured with up to 10 search space sets within a given BWP. In some aspects, each search space set may be associated with a given CORESET and may include a set of monitoring occasions. In some aspects, a search space set may include a set of control channel monitoring occasions (e.g., PDCCH monitoring occasions). Moreover, the UE 115 may be configured to determine the control channel monitoring occasions associated with a given search space set based on one or more characteristics of the search space set, which may be configured (e.g., pre-configured) in the UE 115, indicated to the UE 115 via the base station 105, or both. The UE 115 may be configured with one or more different types of search space sets (e.g., searchSpaceType), including a UE-specific search space set, a common search space set, or both. Furthermore, each search space set may be associated with one or more DCI formats that are to be monitored.
[0091]
[0100] The parameters of the search space set are the periodicity of the monitoring occasion (k s ) (e.g., k sslots), the offset to the monitoring occasion in units of slots (o s ) (for example, o s slots) (e.g., monitoringSlotPeriodicityAndOffset), a duration (T s )(where T s <k s ), or any combination thereof.
[0092]
number
[0093] and frame η f The number of PDCCH monitoring occasions in
[0094]
number
[0095] In some aspects, when monitoring the control channel, the UE 115 may determine if slot
[0096]
number
[0097] Starting with T s may be configured to monitor control channel candidates (e.g., PDCCH candidates) over a search space set s of consecutive slots, s -T s The UE 115 may refrain from monitoring control channel candidates for a search space set s of consecutive slots. The amount of control channel candidates (e.g., PDCCH candidates) may be based on an aggregation level of wireless communications at the UE 115 (e.g., an amount of CCEs).
[0098]
[0101] In some aspects, the UE 115 may be configured to monitor a control channel according to a control channel monitoring pattern (e.g., a PDCCH monitoring pattern) within a slot (e.g., monitoringSymbolsWithinSlot). For example, the PDCCH monitoring pattern within a slot may indicate the first symbol of CORESET within the slot for PDCCH monitoring. For example, in the context of a slot including 14 symbols, the CORESET configured in the UE 115 may be associated with a search space set including three symbols, and the control channel monitoring pattern (e.g., monitoringSymbolsWithinSlot) associated with the search space set may be configured as "01000010001000." In this example, the UE 115 may be configured to determine that there are three monitoring occasions within each slot in which the search space set exists. Moreover, the UE 115 may be configured to determine that the three monitoring occasions start at the second, seventh, and eleventh symbols of each respective slot in which the search space exists.
[0099]
[0102] In the context of SFN, an SFN PDCCH transmission (e.g., PDCCH DMRS) may be associated with two TCI states. In particular, for an SFN PDCCH transmission, one CORESET may be activated in the UE 115 with two active TCI states. In such a case, each control channel candidate (e.g., PDCCH candidate) of the search space set associated with the CORESET may be associated with two active TCI states of the CORESET.
[0100]
[0103] Similarly, for PDCCH repetitions where each PDCCH repetition includes a PDCCH candidate, the two PDCCH candidates (e.g., two PDCCH repetitions) may be linked (e.g., related) to each other due to possible repetitions of the same control channel transmission (e.g., repetitions of DCI). In the context of PDCCH repetitions, the payloads (e.g., DCI payloads) of the two PDCCH candidates (e.g., two PDCCH repetitions) may be the same. For example, a first PDCCH candidate may be related to or linked to a second PDCCH candidate. In this example, the first repetition of the DCI may be transmitted in the first PDCCH candidate, and the second repetition of the DCI may be transmitted in the second PDCCH candidate, where the first repetition and the second repetition of the DCI are the same. In this example, the UE 115 may receive and / or decode only the first repetition of the DCI or only the second repetition of the DCI. Additionally or alternatively, the UE 115 may receive and / or decode both the first and second repetitions of the DCI by performing soft combining of the first and second repetitions of the DCI. In some aspects, related / linked PDCCH candidates may have the same aggregation level (e.g., the same amount of CCEs).
[0101]
[0104] In some aspects, related PDCCH candidates in different search space sets associated with corresponding CORESETs may be linked (e.g., related) to each other for PDCCH repetition. In some cases, two PDCCH candidates with the same candidate index on two related search space sets may be linked or related. In other cases, PDCCH candidates with the same starting CCE index may be linked. In some aspects, sets of related / linked PDCCH candidates may be configured via control signaling (e.g., RRC signaling). For example, the UE 115 may receive an RRC message indicating that a first PDCCH candidate in a first search space set is linked (e.g., related) to a second PDCCH candidate in a second search space set. Moreover, the UE 115 may be configured with sets of linked / related PDCCH candidates that are within the same slot or TTI (e.g., intra-slot PDCCH repetition), sets of linked / related PDCCH candidates that are in different slots (e.g., intra-slot PDCCH repetition), or both.
[0102]
[0105] In some aspects, the UE 115 and base station 105 of the wireless communication system 100 may support signaling and other techniques that enable the UE 115 to inform the network (e.g., the base station 105) that the UE 115 is capable of supporting reception of SFN PDCCH transmissions, inter-slot PDCCH repetitions, or intra-slot PDCCH repetitions, or any combination thereof. For example, in some aspects, the UE 115 may indicate an capability for receiving / decoding multiple related downlink control channel transmissions using a UE capability report that indicates that the UE 115 is capable of receiving multiple PDCCH repetitions, including SFN PDCCH transmissions, inter-slot PDCCH repetitions, and / or intra-slot PDCCH repetitions. Based on the indicated UE capability, the UE 115 may receive a configuration from the base station 105 for receiving multiple related PDCCH transmissions and may monitor the PDCCH according to the configuration. For example, if the UE 115 indicates that it supports inter-slot PDCCH repetition, the UE 115 may receive a first repetition of a PDCCH transmission during a first transmission time interval (TTI) (e.g., a first slot) and a second repetition of the PDCCH transmission during a second TTI (e.g., a second slot). As another example, if the UE 115 indicates that it supports intra-slot PDCCH repetition, the UE 115 may receive a first repetition of a PDCCH transmission and a second repetition of the PDCCH transmission during a common TTI (e.g., a common slot).
[0103]
[0106] In some implementations, the UE capabilities transmitted by the UE 115 to the network (e.g., to the base station 105) may indicate additional parameters associated with each of the supported configurations. For example, the UE capabilities may indicate the maximum amount of slots between related PDCCH transmissions, whether the search space sets for the related PDCCH transmissions may overlap in time / frequency, the maximum number of monitoring occasions in a single slot that it may support, the supported downlink control information (DCI) formats for the related PDCCH transmissions, whether the control resource sets (CORESETs) for the related PDCCH transmissions may be the same or different, etc.
[0104]
[0107] The techniques described herein may provide improved scheduling of wireless communications. In particular, by enabling a UE 115 to inform a network (e.g., a base station 105) of its capability to support one or more configurations for PDCCH repetition (e.g., SFN PDCCH transmission, inter-slot PDCCH repetition, intra-slot PDCCH repetition), the techniques described herein may enable the network to communicate with the UE 115 using the respective configuration for PDCCH repetition depending on the characteristics of the network (e.g., amount of data traffic, noise) as well as the capabilities of the UE 115. Thus, the techniques described herein may enable more widespread use of communications using PDCCH repetition within the wireless communications system 100, thereby improving the reliability of wireless communications, improving transmit diversity, and protecting wireless communications against interference.
[0105]
[0108] 2 illustrates an example of a wireless communication system 200 that supports techniques for signaling user equipment capabilities for PDCCH repetition in accordance with aspects of the present disclosure. In some examples, the wireless communication system 200 may implement or be implemented by aspects of the wireless communication system 100. For example, the wireless communication system 200 may support signaling that enables the UE 115 to indicate an ability to support SFN PDCCH transmission, inter-slot PDCCH repetition, intra-slot PDCCH repetition, or any combination thereof.
[0106]
[0109] The wireless communication system 200 may include a base station 105-a and a UE 115-a, which may be examples of the base station 105 and the UE 115 described with reference to FIG. 1. The UE 115-a may communicate with the base station 105-a using a communication link 205, which may be an example of an NR or LTE link between the UE 115-a and the base station 105-a. In some cases, the communication link 205 between the UE 115-a and the base station 105-a may include an example of an access link (e.g., a Uu link), which may include a bidirectional link enabling both uplink and downlink communication. For example, the UE 115-a may transmit uplink signals, such as uplink control signals or uplink data signals, to the base station 105-a using the communication link 205, and the base station 105-a may transmit downlink signals, such as downlink control signals or downlink data signals, to the UE 115-a using the communication link 205.
[0107]
[0110] In some aspects, the wireless communications system 200 may support signaling that enables the UE 115-a to indicate to the base station 105-a whether it supports reception of SFN PDCCH transmissions, inter-slot PDCCH repetitions, or intra-slot PDCCH repetitions, or any combination thereof. For example, in some aspects, the UE 115 may indicate an capability for receiving / decoding multiple related downlink control channel transmissions using a UE capability report that indicates that the UE 115 is capable of receiving multiple PDCCH repetitions, including SFN PDCCH transmissions, inter-slot PDCCH repetitions, and / or intra-slot PDCCH repetitions. The base station 105-a may then be configured to transmit a configuration (e.g., a configuration for SFN PDCCH transmissions, a configuration for inter-slot PDCCH repetitions, a configuration for intra-slot PDCCH repetitions) to the UE 115-a, thereby enabling the UE 115-a and the base station 105-a to communicate in accordance with the indicated configurations. By enabling the UE 115-a to indicate to the base station 105-a various capabilities and / or parameters associated with SFN PDCCH transmission, inter-slot PDCCH repetition, and / or intra-slot PDCCH repetition, the techniques described herein may enable improved scheduling of wireless communications at the UE 115-a and enable more widespread use of PDCCH repetition.
[0108]
[0111] For example, the UE 115-a may transmit UE capabilities 210 indicating that the UE 115-a supports reception of multiple related downlink control channel transmissions (e.g., multiple related PDCCH transmissions 220) associated with one or more CORESETs. In some aspects, the UE capabilities 210 may be indicated via a UE capability report. In some aspects, the UE capabilities 210 may indicate that it can receive and / or transmit SFN downlink control channel transmissions (e.g., SFN PDCCH transmissions), intra-slot downlink control channel repetitions (e.g., intra-slot PDCCH repetitions), inter-slot downlink control channel repetitions (e.g., inter-slot PDCCH repetitions), or any combination thereof.
[0109]
[0112] In this regard, the UE capabilities 210 may indicate that the UE 115-a supports a first configuration 215-a for receiving / decoding SFN PDCCH transmissions, a second configuration 215-b for receiving / decoding intra-slot PDCCH repetitions, and / or a third configuration 215-c for receiving / decoding inter-slot PDCCH repetitions. As shown in FIG. 2, if the UE 115-a supports the first configuration 215-a for receiving / decoding SFN PDCCH transmissions, the UE 115-a may be able to receive and / or decode a first SFN PDCCH transmission 220 and a second SFN PDCCH transmission 220 related to the first SFN PDCCH transmission 220. In the context of the SFN PDCCH transmission 220, the same coded bits may be transmitted within a common set of resource elements (e.g., within a common set of CCEs and / or CCE-REGs). In such a case, the SFN PDCCH transmission 220 may be associated with two TCI states (e.g., two beams), where the UE 115-a receives a combined signal of the respective SFN PDCCH transmissions 220, which may improve channel estimation.
[0110]
[0113] If the UE 115-a supports the second configuration 215-b for receiving / decoding intra-slot PDCCH repetitions, the UE 115-a may be able to receive and / or decode the first PDCCH transmission 220 and the second PDCCH transmission 220 during a common slot 225 (e.g., the first slot 225-a), where the first PDCCH transmission 220 and the second PDCCH transmission 220 are associated (e.g., linked) with each other. Similarly, if the UE 115-a supports a third configuration 215-c for receiving / decoding inter-slot PDCCH repetition, the UE 115-a may be able to receive and / or decode a first PDCCH transmission 220 during a first slot 225-a and a second PDCCH transmission 220 during a different slot (e.g., a second slot 225-b, a third slot 225-c), where the first PDCCH transmission 220 and the second PDCCH transmission 220 are associated (e.g., linked) with each other.
[0111]
[0114] In some cases, a network (e.g., wireless communication system 200) may be configured with one or more standardized configurations for receiving / decoding multiple related downlink control channel transmissions. In such cases, UE capabilities 210 may indicate that UE 115-a supports one or more of the configurations for receiving / decoding multiple related PDCCH transmissions 220 via one or more bit field values in the UE capability report.
[0112]
[0115] In some aspects, the UE capabilities 210 may indicate that the UE supports reception of SFN downlink control channel transmissions. In other words, the UE capabilities 210 may indicate that the UE 115-a supports a first configuration 215-a for SFN PDCCH transmissions 220. As previously described herein, in the context of SFN, each PDCCH transmission 220 (e.g., PDCCH DMRS) may be associated with two TCI states. In such a case, the UE capabilities 210 may include an indication of the amount of CORESET within a BWP that may be configured at the UE 115-a. In particular, the UE capabilities 210 may include an indication of the amount of CORESET within a BWP that may be simultaneously associated with two active TCI states for the SFN PDCCH transmissions 220.
[0113]
[0116] In some cases, the UE capabilities 210 may indicate that the UE supports reception of intra-slot downlink control channel transmissions, inter-slot downlink control channel transmissions, or both. In other words, the UE capabilities 210 may indicate that the UE 115-a supports a second configuration 215-b for intra-slot PDCCH repetitions, a third configuration 215-c for intra-slot PDCCH repetitions, or both. In such a case, the UE capabilities 210 may include one or more parameters associated with intra-slot and / or inter-slot PDCCH repetitions (e.g., parameters associated with the second configuration 215-b and / or the third configuration 215-c), including, but not limited to, the amount (e.g., maximum amount) of downlink control channel monitoring occasions (e.g., PDCCH monitoring occasions) within one or more slots 225 that may be monitored by the UE 115-a, an indication that the UE 115-a supports or does not support monitoring of a UE-specific search space set and / or a common search space set, a format for downlink control information associated with intra-slot and / or inter-slot downlink control channel repetitions (e.g., DCI formats including DCI1_0, DCI2_0, DCI3_0, etc.), or any combination thereof.
[0114]
[0117] For example, the UE capabilities 210 may indicate a maximum number of PDCCH monitoring occasions within a slot 225 that may be configured for a search space set linked to another search space set for inter-slot and / or intra-slot PDCCH repetitions. The indication of the maximum number of PDCCH monitoring occasions that may be monitored by the UE 115-a may determine the allowable value of an RRC parameter (e.g., monitoringSymbolsWithinSlot) that the base station 105-a may configure for the related / linked search space set. As another example, the UE capabilities 210 may indicate that the UE 115-a may receive and / or decode a UE-specific search space set and / or a common search space set for inter-slot PDCCH repetitions, intra-slot PDCCH repetitions, or both. As another example, the UE capabilities 210 may indicate which DCI formats the UE 115-a may receive / decode for inter-slot and / or intra-slot PDCCH repetitions. In some aspects, the indication of the DCI format may determine the allowed values of the RRC parameters (eg, searchSpaceType) that the base station 105-a may configure for the associated / linked search space set.
[0115]
[0118] The UE capabilities 210 may indicate one or more parameters associated with a set of linked CORESETs for inter-slot and / or intra-slot PDCCH repetition. For example, the UE capabilities 210 may indicate that the UE 115-a supports reception of a first PDCCH transmission 220 associated with a first CORESET and a second PDCCH transmission 220 associated with a second CORESET, where the first PDCCH transmission 220 and the second PDCCH transmission 220 are related or linked. In this example, the UE capabilities 210 may indicate a first set of parameters associated with the first CORESET and a second set of parameters associated with the second CORESET. In some cases, the first set of parameters and the second set of parameters may be the same or different. The parameters associated with each CORESET may include, but are not limited to, a CORESET duration, a CCE-REG mapping type, a precoding granularity, a CORESET pool index, or any combination thereof.
[0116]
[0119] For example, the UE capabilities 210 may indicate the quantity of symbols of each CORESET (e.g., CORESET duration). The UE capabilities 210 may indicate whether the CORESET durations of the first and second CORESETs for inter-slot and / or intra-slot PDCCH repetitions should be the same, whether they may be different, or whether the UE 115-a supports both. As another example, the UE capabilities 210 may indicate whether the CCE-REG mapping type (e.g., CCE-REG bundling mapping type) and / or precoding granularity of the first and second CORESETs associated with the linked search space sets for inter-slot and / or intra-slot PDCCH repetitions may be the same and / or whether they may be different.
[0117]
[0120] Similarly, UE capabilities 210 may indicate whether the first and second CORESETs associated with the linked search space sets for inter-slot and / or intra-slot PDCCH repetitions may be configured with a CORESET pool index value (e.g., a CORESETPoolIndex value). In some aspects, the CORESET pool index may represent the TRP ID of the multi-DCI-based multi-TRP UE 115, such that the CORESET configured with the CORESET pool index value may effectively divide the CORESET into two or more groups. If UE 115-a indicates that it may be configured with a CORESET pool index value for inter-slot and / or intra-slot PDCCH repetitions, UE capabilities 210 may further indicate whether the CORESET pool indexes for the first and second CORESETs associated with the linked search space sets for inter-slot and / or intra-slot PDCCH repetitions may be the same and / or whether they may be different.
[0118]
[0121] Additionally or alternatively, if the UE capabilities 210 indicate that the UE 115-a supports inter-slot and / or intra-slot PDCCH repetition (e.g., supports the second configuration 215-b and / or the third configuration 215-c), the UE capabilities 210 may further indicate whether the UE 115-a supports four or more CORESETs within the active BWP (and / or component carrier) of the serving cell supported by the base station 105-a. For example, the UE capabilities 210 may indicate that the UE 115-a supports reception of multiple related downlink control channel transmissions (e.g., PDCCH transmissions 220) associated with three or more CORESETs, where the three or more CORESETs are associated with a common BWP. In some aspects, the capability to support three (or more) CORESETs within a BWP may be applicable to the primary serving cell of the base station 105-a. Moreover, in some implementations, the ability to support three (or more) CORESETs in a BWP may be applicable only to wireless communications conducted within the FR2 frequency range. In particular, in FR2 communications, one CORESET may be dedicated to beam failure recovery (BFR) and one CORESET (e.g., CORESET0) may be dedicated to the broadcast PDCCH (which generally utilizes wide beams). Thus, in FR2 communications in which three CORESETs are configured for BWP, only one CORESET may be utilized for repeated downlink control channel transmissions (assuming narrow beams will be used).
[0119]
[0122] Furthermore, if UE capabilities 210 indicates that UE 115-a supports inter-slot and / or intra-slot PDCCH repetition, UE capabilities 210 may further indicate whether UE 115-a supports span-based PDCCH monitoring within a serving cell configured for inter-slot and / or intra-slot PDCCH repetition. In particular, UE capabilities 210 may indicate a maximum amount of control channel candidates and / or CCEs (e.g., non-overlapping CCEs) per span of resources (e.g., span of time resources, span of frequency resources) that can be monitored or blindly decoded by UE 115-a. For example, UE capabilities 210 may indicate that UE 115-a supports monitoring of the amount of control channel candidates per span of resources, the amount of CCEs per span of resources, or both. In such a case, UE capabilities 210 may indicate whether PDCCH repetitions can be monitored / decoded within the same span of resources, different spans of resources, or both.
[0120]
[0123] As previously described herein, the UE 115-a may be capable of decoding multiple repetitions of related PDCCH transmissions 220 (e.g., a first repetition of a DCI, a second repetition of a DCI) by performing soft combining of the respective PDCCH transmissions 220. Thus, by supporting inter-slot and / or intra-slot PDCCH repetitions, the UE 115-a may be configured to store the soft outputs of PDCCH candidates / repetitions for a certain amount of time in order to combine them with later received PDCCH candidates / repetitions. The ability to store the soft outputs of PDCCH repetitions may be particularly important in the context of inter-slot PDCCH repetitions (third configuration 215-c) in which related / linked PDCCH repetitions are located in different slots 225. For example, the UE 115-a may only have the storage and / or processing capabilities to store the soft output of the first repetition of a PDCCH transmission 220 for three slots 225 and may therefore be unable to receive inter-slot PDCCH repetitions in which the repetitions are separated by four or more slots 225.
[0121]
[0124] Thus, if the UE capabilities 210 indicate that the UE supports reception of inter-slot control channel repetition (e.g., the UE 115-a supports the third configuration 215-c for inter-slot PDCCH repetition), the UE capabilities 210 may further indicate an amount of slots 225 between linked / related downlink control channel transmissions that can be blind decoded. In particular, the UE capabilities 210 may indicate whether the repetitions of the PDCCH transmission 220 can be received / decoded during consecutive slots 225, during non-consecutive slots 225, or during both. For example, the UE capabilities 210 may include an indication of an amount (e.g., a maximum amount) of slots 225 between a first PDCCH transmission 220 and a second PDCCH transmission 220 associated with (e.g., related / linked to) the first PDCCH transmission 220 that can be decoded by the UE 115-a.
[0122]
[0125] For example, if UE capabilities 210 indicate that the maximum amount of slots 225 between linked PDCCH transmissions 220 is 1, this may indicate that UE 115-a only supports inter-slot PDCCH repetition during consecutive (e.g., adjacent) slots 225, whereas an amount of slots 225 between linked transmissions greater than 1 may indicate that UE 115-a can support non-consecutive inter-slot PDCCH repetition, consecutive inter-slot PDCCH repetition, or both. In particular, if UE capabilities 210 indicate that the maximum amount of slots between linked PDCCH transmissions 220 is M, this may indicate that UE 115-a supports (o s,2 -o s,1 ) mod k s It can be shown that k ≤ M inter-slot PDCCH repetitions can be supported, where k s is the periodicity of the first and second linked search space sets, and o s,1 is the slot offset of the first of the two linked search space sets, and o s,2 is the slot offset of the second of the two linked search space sets.
[0123]
[0126] Furthermore, if the UE capabilities 210 indicate that the UE 115-a supports reception of inter-slot control channel repetition (e.g., the UE 115-a supports the third configuration 215-c for inter-slot PDCCH repetition), the UE capabilities 210 may further indicate the amount (e.g., maximum amount) of slots 225 in which a search space set exists within the search space set periodicity, where a search space set is linked to another search space set for inter-slot PDCCH repetition. In other words, the UE capabilities 210 may indicate the maximum search space set duration of a set of related search space sets linked for inter-slot PDCCH repetition. For example, the UE capabilities 210 may include an indication of the maximum number of slots 225 in which the UE 115-a supports one or more linked search space sets for inter-slot PDCCH repetition according to the search space set periodicity of the one or more linked search space sets.
[0124]
[0127] Moreover, the UE capabilities 210 may indicate whether the UE 115-a can receive and / or decode PDCCH transmissions 220 received during overlapping search space sets. In particular, the UE capabilities 210 may indicate whether the UE 115-a can receive and / or decode PDCCH transmissions 220 received during monitoring occasions of one or more search space sets that overlap in the time domain, the frequency domain, or both. For example, the UE capabilities 210 may indicate that the UE 115-a supports reception of PDCCH transmissions 220 received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, where the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both. In some aspects, the ability of the UE 115-a to monitor overlapping search space sets / monitoring occasions in the time domain may enable the base station 105-a to determine applicable (e.g., acceptable) values for the RRC parameter monitoringSymbolsWithinSlot for linked search space sets. Similarly, the ability of the UE 115-a to monitor overlapping search space sets / monitoring occasions in the frequency domain may enable the base station 105-a to determine applicable (e.g., acceptable) configurations for two linked CORESETs associated with the two linked search space sets for intra-slot PDCCH repetitions.
[0125]
[0128] In some aspects, various capabilities of and / or parameters of configurations supported by the UE 115-a may be indicated with varying granularity via the UE capabilities 210. For example, various capabilities of and / or parameters of configurations supported by the UE 115-a may be indicated for the UE 115-a (e.g., indicated on a per UE 115 basis), may be indicated for each frequency band of the UE 115-a (e.g., indicated on a per band basis), may be indicated for each frequency band combination of the UE 115-a (e.g., indicated on a per band combination basis), may be indicated for each band of the band combination (e.g., on a per feature set (FS) basis), may be indicated for each component carrier of the bands of the band combination (e.g., indicated on a per feature set per component carrier (FSPC) basis), or any combination thereof.
[0126]
[0129] In some aspects, the UE 115-a may receive from the base station 105-a a configuration 215 for receiving multiple related downlink control channel transmissions. In this regard, the UE 115-a may receive an indication of a first configuration 215-a for SFN PDCCH transmission 220, a second configuration 215-b for intra-slot PDCCH repetition, a third configuration 215-c for inter-slot PDCCH repetition, or any combination thereof. The configuration 215 may be indicated via control signaling, including an RRC message, a DCI message, a MAC-CE message, etc.
[0127]
[0130] In some aspects, the UE 115-a may receive the configuration 215 based on transmitting the UE capabilities 210. In particular, the configuration 215 may be based on one or more parameters or characteristics of the UE 115-a indicated via the UE capabilities 210. Thus, the base station 105-a may configure the UE 115-a (via the configuration 215) for SFN PDCCH transmissions 220, intra-slot PDCCH repetition, and / or inter-slot PDCCH repetition according to the various capabilities or limitations of the UE 115-a indicated in the UE capabilities 210. In other words, the base station 105-a may configure the UE 115-a with the configuration 215 to receive multiple related PDCCH transmissions 220 that instruct the UE 115-a to monitor a set of resources, a set of associated CORESETs, a set of associated search space sets, a set of associated monitoring occasions, or any combination thereof for the SFN PDCCH transmissions 220, intra-slot PDCCH repetition, inter-slot PDCCH repetition, or any combination thereof.
[0128]
[0131] For example, the configuration 215 may be based on any parameters or characteristics indicated in the UE capabilities 210, including, but not limited to, an ability to receive multiple related PDCCH transmissions 220 associated with three or more CORESETs associated with a common BWP, an amount (e.g., maximum amount) of slots between related PDCCH transmissions 220 that can be decoded by the UE 115-a, an ability to receive / decode related PDCCH transmissions 220 within overlapping search space sets and / or overlapping monitoring occasions, an amount of PDCCH monitoring occasions in one or more slots monitored by the UE 115-a, an ability of the UE 115-a to monitor UE-specific and / or common search space sets, a format (e.g., DCI format) for the PDCCH transmissions 220, parameters associated with a CORESET for intra-slot and / or inter-slot PDCCH repetition, an ability of the UE 115-a to perform span-based monitoring, an amount of CORESETs within a BWP, or any combination thereof.
[0129]
[0132] For example, in some cases, UE capabilities 210 may indicate that UE 115-a supports span-based monitoring. In such cases, UE capabilities 210 may indicate that UE 115-a supports monitoring of a quantity of control channel candidates per span of resources, a quantity of CCEs per span of resources, or both. In this example, UE 115-a may receive configuration 215 based on the quantity of control channel candidates and / or CCEs that may be monitored per span of resources, as indicated in UE capabilities 210.
[0130]
[0133] In some aspects, the UE 115-a may receive an indication of one or more CORESETS 230 for receiving multiple related PDCCH transmissions 220. The one or more CORESETS 230 may be indicated via control signaling, including an RRC message, a DCI message, a MAC-CE message, etc. In some aspects, the UE 115-a may receive an indication of one or more CORESETS 230 based on transmitting a UE capability 210, receiving a configuration 215, or both. Additionally or alternatively, the indication of one or more CORESETS 230 may be indicated along with the configuration 215. In this regard, in some implementations, the configuration 215 and the CORESET 230 may be indicated via a common control message (e.g., a common RRC message, a common DCI message).
[0131]
[0134] In some aspects, the CORESET 230 may be based on one or more parameters or characteristics of the UE 115-a indicated via the UE capabilities 210. Accordingly, the base station 105-a may configure the UE 115-a with one or more CORESETs 230 according to the various capabilities or limitations of the UE 115-a indicated in the UE capabilities 210. For example, the UE capabilities 210 may indicate whether the UE 115-a can support monitoring of two linked (e.g., related) CORESETs 230 if the two linked CORESETs 230 have the same duration (e.g., the same CORESET duration), different durations, or both. In such a case, the base station 105-a may configure the UE 115-a with a first CORESET 230 and a second CORESET 230 based on (e.g., in accordance with) an indication that the CORESET durations of the linked CORESETs 230 may be the same, different, or both. For example, the UE capabilities 210 may indicate that the UE 115-a may receive inter-slot and / or intra-slot PDCCH repetitions associated with two linked CORESETs 230 having different CORESET durations. In this example, the UE 115-a may receive an indication of a first CORESET 230 having a first CORESET duration (e.g., two symbols) and a second CORESET 230 having a second CORESET duration (e.g., three symbols), where the first CORESET 230 and the second CORESET 230 are linked for inter-slot and / or intra-slot PDCCH repetitions.
[0132]
[0135] Similarly, the UE 115-a may receive an indication of one or more related search space sets 235. The one or more related search space sets 235 may be indicated via control signaling, including an RRC message, a DCI message, a MAC-CE message, etc. For example, the UE 115-a may receive an indication of a first search space set 235 and a second search space set 235, where the first search space set 235 is related to (e.g., linked to) the second search space set 235. In some aspects, the UE 115-a may receive an indication of the one or more search space sets 235 based on transmitting the UE capabilities 210, receiving the configuration 215, receiving the CORESET 230, or any combination thereof. Additionally or alternatively, the indication of the one or more search space sets 235 may be indicated along with the configuration 215, the CORESET 230, or both. In this regard, in some implementations, the configuration 215, the CORESET 230, and the search space set 235 may be indicated via a common control message (eg, a common RRC message, a common DCI message).
[0133]
[0136] In some implementations, the one or more search space sets 235 may be based on one or more parameters or characteristics of the UE 115-a indicated via the UE capabilities 210. Thus, the base station 105-a may configure the UE 115-a with one or more search space sets 235 according to the various capabilities or limitations of the UE 115-a indicated in the UE capabilities 210. For example, if the UE capabilities 210 indicates that the UE 115-a supports reception of inter-slot PDCCH repetition, the base station 105-a may transmit an indication of a first search space set 235 and a second search space set 235 associated with the first search space set 235. In this example, the first search space set 235 and the second search space set 235 may each include one or more monitoring occasions in different slots 225 for inter-PDCCH repetition. For example, a first search space set 235 may include a first monitoring occasion in a first slot 225-a, and a second search space set 235 may include a second monitoring occasion in a different slot 225 (e.g., a second slot 225-b, a third slot 225-c), where the first monitoring occasion and the second monitoring occasion 235 are related or linked due to inter-PDCCH repetition.
[0134]
[0137] As another example, the UE capabilities 210 may include an indication of a quantity of slots 225 between a first PDCCH transmission 220 and a second PDCCH transmission 220 associated with the first PDCCH transmission 220 that can be decoded by the UE 115-a. For example, the UE capabilities 210 may indicate that the UE 115-a can decode associated PDCCH repetitions with up to three slots 225 between the associated PDCCH repetitions for inter-slot PDCCH repetitions. In this example, the base station 105-a may configure the UE 115-a with a first search space set 235 and a second search space set 235 associated with the first search space set 235 according to the indication of the quantity of slots 225. In particular, if UE 115-a indicates a maximum amount of M slots 225 between related PDCCH transmissions 220 that can be decoded by UE 115-a, base station 105-a may configure first search space set 235 and second search space set 235 such that monitoring occasions associated with each search space set 235 are separated by M or fewer slots 225.
[0135]
[0138] As another example, if the UE capabilities 210 indicate that the UE 115-a supports reception of intra-slot PDCCH repetition (e.g., indicates support for the second configuration 215-b), the base station 105-a may transmit an indication of a first search space set 235 and a second search space set 235 associated with the first search space set 235. In this example, the first search space set 235 and the second search space set 235 may each include one or more monitoring occasions in a common slot 225 for inter-PDCCH repetition. For example, the first search space set 235 may include a first monitoring occasion in the first slot 225-a, and the second search space set 235 may include a second monitoring occasion in the first slot 225-a, where the first monitoring occasion and the second monitoring occasion are related or linked for intra-PDCCH repetition. In some aspects, related or linked sets of search spaces 235 and / or sets of monitoring occasions for intra-slot PDCCH repetitions may at least partially overlap in the time domain, the frequency domain, or both. In such cases, the base station 105-a may configure the UE 115-a with overlapping search space sets 235 and / or overlapping sets of monitoring occasions based on an indication in the UE capabilities 210 that the UE 115-a supports reception of PDCCH transmissions 220 received in the overlapping search space sets 235 and / or monitoring occasions.
[0136]
[0139] Additionally or alternatively, the UE 115-a may receive an indication of one or more search space sets 235 based on one or more additional parameters or characteristics indicated in the UE capabilities 210, including the amount of PDCCH monitoring occasions that may be monitored by the UE 115-a, an indication that the UE 115-a supports monitoring of a UE-specific search space set 235 and / or a common search space set 235, a DCI format associated with intra-slot and / or inter-slot PDCCH repetition, or any combination thereof.
[0137]
[0140] In some aspects, the UE 115-a may monitor a downlink control channel (e.g., a PDCCH) in accordance with a configuration 215 to receive multiple related downlink control channel transmissions. Moreover, the UE 115-a may monitor the control channel based on transmitting the UE capabilities 210, receiving the configuration 215, receiving the CORESET 230, receiving the search space set 235, or any combination thereof.
[0138]
[0141] For example, if UE 115-a is configured with a first search space set 235 including a first monitoring occasion during a first slot 225-a and a second search space set 235 including a second monitoring occasion during a third slot 225-c for inter-slot PDCCH repetition, UE 115-a may monitor the first search space set 235 (e.g., the first monitoring occasion), the second search space set (e.g., the second monitoring occasion), or both for inter-slot PDCCH repetition according to configuration 215 and search space set 235. Similarly, as another example, if UE 115-a is configured with a first search space set 235 including a first monitoring occasion during a first slot 225-a and a second search space set 235 including a second monitoring occasion during the first slot 225-a for intra-slot PDCCH repetitions, UE 115-a may monitor the first search space set 235 (e.g., the first monitoring occasion), the second search space set 235 (e.g., the second monitoring occasion), or both for the intra-slot PDCCH repetitions according to configuration 215 and search space set 235.
[0139]
[0142] As another example, if the UE capabilities 210 indicate that the UE 115-a supports reception of SFN PDCCH transmissions 220, the base station 105-a may configure the UE 115-a with a CORESET 230 that includes two TCI states at 315. In this example, the UE 115-a may monitor a control channel (e.g., a PDCCH) for SFN downlink control channel transmissions based on (e.g., in accordance with) the indication in the CORESET 230.
[0140]
[0143] In some aspects, the UE 115-a may receive a first downlink control channel transmission (e.g., a first PDCCH transmission 220-a) from the base station 105-a. In some aspects, the base station 105-a may transmit the first PDCCH transmission 220-a in accordance with a 5G radio access technology, an NR radio access technology, or both. In some aspects, the UE 115-a may receive the first PDCCH transmission 220-a based on monitoring a downlink control channel (e.g., a PDCCH). Moreover, the UE 115-a may receive (and the base station 105-a may transmit) the first PDCCH transmission 220-a based on transmitting / receiving UE capabilities 210, transmitting / receiving configuration 215, transmitting / receiving CORESET 230, transmitting / receiving search space set 235, monitoring a downlink control channel, or any combination thereof.
[0141]
[0144] Similarly, in some implementations, the UE 115-a may receive a second downlink control channel transmission (e.g., a second PDCCH transmission 220-b) from the base station 105-a. In some aspects, the base station 105-a may transmit the second PDCCH transmission 220-b in accordance with a 5G radio access technology, an NR radio access technology, or both. As previously described herein, the second PDCCH transmission 220-b may be associated with (e.g., linked to, related to) the first PDCCH transmission 220-a. For example, the first PDCCH transmission 220-a and the second PDCCH transmission 220-b may include repetitions of the same PDCCH transmission 220 and, therefore, may include the same data payload.
[0142]
[0145] In some aspects, the UE 115-a may receive the second PDCCH transmission 220-b based on monitoring a downlink control channel (e.g., a PDCCH). Moreover, the UE 115-a may receive (and the base station 105-a may transmit) the second PDCCH transmission 220-b based on sending / receiving the UE capabilities 210, sending / receiving the configuration 215, sending / receiving the CORESET 230, sending / receiving the search space set 235, monitoring the downlink control channel, sending / receiving the first PDCCH transmission 220-a, or any combination thereof.
[0143]
[0146] For example, if the UE capabilities 210 indicate that a first UE 115-a supports SFN PDCCH transmission 220 (e.g., supports a first configuration 215-a), the UE 115-a may receive a configuration 215 for SFN PDCCH transmission 220. In this example, the UE 115-a may receive the first SFN PDCCH transmission 220-a and the second SFN PDCCH transmission 220-b in accordance with the configuration 215 for SFN PDCCH transmission. As another example, if the UE 115-a is configured for intra-slot PDCCH repetition, the UE 115-a may receive the first PDCCH transmission 220-a in a first slot 225-a and may receive a second PDCCH transmission 220-b associated with (e.g., linked to, related to) the first PDCCH transmission 220-a in the same slot 225 (e.g., the first slot 225-a). Similarly, if the UE 115-a is configured for inter-slot PDCCH repetition, the UE 115-a may receive a first PDCCH transmission 220-a in a first slot 225-a and may receive a second PDCCH transmission 220-b associated with (e.g., linked to, related to) the first PDCCH transmission 220-b in a third slot 225-c that is different from the first slot 225-a.
[0144]
[0147] In some aspects, the UE 115-a may decode the first PDCCH transmission 220-a, the second PDCCH transmission 220-b, or both. In some aspects, the UE 115-a may decode the first PDCCH transmission 220-a and / or the second PDCCH transmission 220-b based on receiving the respective PDCCH transmission 220. Moreover, the UE 115-a may decode the first PDCCH transmission 220-a and / or the second PDCCH transmission 220-b based on transmitting the UE capabilities 210, receiving the configuration 215, receiving the CORESET 230, receiving the search space set 235, monitoring the downlink control channel, receiving the first PDCCH transmission 220-a, receiving the second PDCCH transmission 220-b, or any combination thereof.
[0145]
[0148] For example, as described previously herein, the first PDCCH transmission 220-a and the second PDCCH transmission 220-b may include repetitions of the same PDCCH transmission 220 and therefore may include the same data payload. In this regard, the UE 115-a may be configured to decode (e.g., demodulate) the data payload of each PDCCH transmission 220 by decoding the first PDCCH transmission 220-a or the second PDCCH transmission 220-b. Additionally or alternatively, the UE 115-a may decode the data payload of each PDCCH transmission 220 by performing a soft-combining procedure using both the first PDCCH transmission 220-a and the second PDCCH transmission 220-b.
[0146]
[0149] The techniques described herein may provide improved scheduling of wireless communications. In particular, by enabling a UE 115-a to inform a network (e.g., a base station 105-a) of its capability to support one or more configurations for PDCCH repetition (e.g., SFN PDCCH transmission 220, inter-slot PDCCH repetition, intra-slot PDCCH repetition), the techniques described herein may enable the base station 105-a to communicate with the UE 115-a using the respective configuration for PDCCH repetition depending on the characteristics of the network (e.g., amount of data traffic, noise) as well as the capabilities of the UE 115-a. Thus, the techniques described herein may enable more widespread use of communications using PDCCH repetition within a wireless communications system, thereby improving the reliability of wireless communications, improving transmit diversity, and further protecting wireless communications against interference.
[0147]
[0150] 3 illustrates an example process flow 300 supporting techniques for signaling user equipment capabilities for PDCCH repetition according to aspects of the present disclosure. In some examples, process flow 300 may implement or be implemented by aspects of wireless communications system 100, wireless communications system 200, or both. For example, process flow 300 may illustrate UE 115-b transmitting a UE capability to support reception of multiple related downlink control channel transmissions, receiving a configuration for receiving the multiple related downlink channel transmissions, and monitoring the downlink control channel in accordance with the configuration, as described with reference to FIGS. 1-2.
[0148]
[0151] In some cases, the process flow 300 may include a UE 115-a and a base station 105-b, which may be examples of corresponding devices described herein. In particular, the UE 115-b and the base station 105-b shown in FIG. 3 may include examples of the UE 115-a and the base station 105-a shown in FIG.
[0149]
[0152] In some examples, the operations illustrated in process flow 300 may be performed by hardware (including, e.g., circuits, processing blocks, logic components, and other components), code (e.g., software) executed by a processor, or any combination thereof. The following alternatives may be implemented, in which some steps are performed in a different order than described, or not performed at all. In some cases, steps may include additional features not described below, or further steps may be added.
[0150]
[0153] At 305, the UE 115-b may transmit UE capabilities indicating that the UE 115-b supports reception of multiple related downlink control channel transmissions (e.g., multiple related PDCCH transmissions) associated with one or more CORESETs. In some aspects, the UE capabilities may be indicated via a UE capability report. In some aspects, the UE capabilities may indicate that it can receive and / or decode SFN downlink control channel transmissions (e.g., SFN PDCCH transmissions), intra-slot downlink control channel repetitions (e.g., intra-slot PDCCH repetitions), inter-slot downlink control channel repetitions (e.g., inter-slot PDCCH repetitions), or any combination thereof. In this regard, the UE capabilities may indicate that the UE 115-b supports a first configuration for receiving / decoding SFN PDCCH transmissions, a second configuration for receiving / decoding intra-slot PDCCH repetitions, and / or a third configuration for receiving / decoding inter-slot PDCCH repetitions.
[0151]
[0154] In some cases, a network (e.g., wireless communication system 100, 200) may be configured with one or more standardized configurations for receiving / decoding multiple related downlink control channel transmissions. In such cases, the UE capabilities may indicate that the UE 115-b supports one or more of the configurations for receiving / decoding multiple related PDCCH transmissions via one or more bit field values in the UE capabilities report.
[0152]
[0155] In some aspects, the UE capabilities may indicate that the UE supports reception of SFN downlink control channel transmissions. In other words, the UE capabilities may indicate that the UE 115-b supports a first configuration for SFN PDCCH transmissions. As previously described herein, in the context of SFN, each PDCCH transmission (e.g., PDCCH DMRS) may be associated with two TCI states. In such a case, the UE capabilities may include an indication of the amount of CORESET within the BWP that may be configured in the UE 115-b. In particular, the UE capabilities may include an indication of the amount of CORESET within the BWP that may be simultaneously associated with two active TCI states.
[0153]
[0156] In some cases, the UE capabilities may indicate that the UE supports reception of inter-slot downlink control channel transmissions, intra-slot downlink control channel transmissions, or both. In other words, the UE capabilities may indicate that the UE 115-b supports a second configuration for intra-slot PDCCH repetitions, a third configuration for intra-slot PDCCH repetitions, or both. In such cases, the UE capabilities may include one or more parameters associated with intra-slot and / or inter-slot PDCCH repetitions that may be received / decoded by the UE 115-b, including, but not limited to, an amount (e.g., a maximum amount) of downlink control channel monitoring occasions (e.g., PDCCH monitoring occasions) in one or more slots that may be monitored by the UE 115-b, an indication that the UE 115-b supports or does not support monitoring of a UE-specific search space set and / or a common search space set, a format for downlink control information associated with intra-slot and / or intra-slot downlink control channel repetitions (e.g., a DCI format including DCI1_0, DCI2_0, DCI3_0, etc.), or any combination thereof.
[0154]
[0157] For example, the UE capabilities may indicate a maximum number of PDCCH monitoring occasions within a slot that may be configured for a search space set linked to another search space set for inter-slot and / or intra-slot PDCCH repetitions. The indication of the maximum number of PDCCH monitoring occasions that may be monitored by the UE 115-b may determine the allowable value of an RRC parameter (e.g., monitoringSymbolsWithinSlot) that the base station 105-b may configure for the related / linked search space set. As another example, the UE capabilities may indicate that the UE 115-b may receive and / or decode a UE-specific search space set and / or a common search space set for inter-slot PDCCH repetitions, intra-slot PDCCH repetitions, or both. As another example, the UE capabilities may indicate which DCI formats the UE 115-b may receive / decode for inter-slot and / or intra-slot PDCCH repetitions. In some aspects, the indication of the DCI format may determine the allowed values of the RRC parameters (eg, searchSpaceType) that the base station 105-b may configure for the associated / linked search space set.
[0155]
[0158] The UE capabilities may indicate one or more parameters associated with a set of linked CORESETs for inter-slot and / or intra-slot PDCCH repetition. For example, the UE capabilities may indicate that the UE 115-b supports reception of a first PDCCH transmission associated with a first CORESET and a second PDCCH transmission associated with a second CORESET, where the first PDCCH transmission and the second PDCCH transmission 220 are related or linked. In this example, the UE capabilities may indicate a first set of parameters associated with the first CORESET and a second set of parameters associated with the second CORESET. In some cases, the first set of parameters and the second set of parameters may be the same or different. The parameters associated with each CORESET may include, but are not limited to, a CORESET duration, a CCE-REG mapping type, a precoding granularity, a CORESET pool index, or any combination thereof.
[0156]
[0159] Additionally or alternatively, if the UE capabilities indicate that the UE 115-b supports inter-slot and / or intra-slot PDCCH repetition, the UE capabilities may further indicate whether the UE 115-b supports more than three CORESETs within the active BWP (and / or component carrier) of the serving cell. For example, the UE capabilities may indicate that the UE 115-b supports reception of multiple related downlink control channel transmissions associated with more than three CORESETs, where the more than three CORESETs are associated with a common BWP.
[0157]
[0160] Furthermore, if the UE capabilities indicate that the UE 115-b supports inter-slot and / or intra-slot PDCCH repetition, the UE capabilities may further indicate whether the UE 115-b supports span-based PDCCH monitoring within a serving cell configured for inter-slot and / or intra-slot PDCCH repetition. In particular, the UE capabilities may indicate a maximum amount of control channel candidates and / or CCEs (e.g., non-overlapping CCEs) per span of resources (e.g., span of time resources, span of frequency resources) that can be monitored or blindly decoded. For example, the UE capabilities may indicate that the UE 115-b supports monitoring of the amount of control channel candidates per span of resources, the amount of CCEs per span of resources, or both. In such a case, the UE capabilities may indicate whether PDCCH repetitions can be monitored / decoded within the same span of resources, different spans of resources, or both.
[0158]
[0161] As previously discussed herein, the UE 115-b may be capable of decoding multiple repetitions of related PDCCH transmissions (e.g., a first repetition of a DCI, a second repetition of a DCI) by performing soft combining of the respective PDCCH transmissions. Thus, by supporting inter-slot and / or intra-slot PDCCH repetitions, the UE 115-b may be configured to store the soft outputs of PDCCH candidates / repetitions for a certain amount of time in order to combine them with later received PDCCH candidates / repetitions. The ability to store the soft outputs of PDCCH repetitions may be particularly important in the context of inter-slot PDCCH repetitions in which related / linked PDCCH repetitions are located in different slots. For example, the UE 115-b may only have the storage and / or processing capabilities to store the soft output of the first repetition of a PDCCH transmission for three slots and may therefore be unable to receive inter-slot PDCCH repetitions in which the repetitions are separated by four or more slots.
[0159]
[0162] Thus, if the UE capabilities indicate that the UE supports reception of inter-slot control channel repetition (e.g., the UE 115-b supports a second configuration for inter-slot PDCCH repetition), the UE capabilities may further indicate the amount of slots between linked / related downlink control channel transmissions that can be blind decoded. In particular, the UE capabilities may indicate whether the repetitions of the PDCCH transmissions can be received / decoded during consecutive slots, non-consecutive slots, or both. For example, the UE capabilities may include an indication of the amount (e.g., maximum amount) of slots between a first PDCCH transmission and a second PDCCH transmission associated with (e.g., related / linked to) the first PDCCH transmission that can be decoded by the UE 115-b. For example, if the UE capabilities indicate that the maximum amount of slots between linked PDCCH transmissions is 1, this may indicate that the UE 115-b only supports inter-slot PDCCH repetition during consecutive slots, whereas an amount of slots between linked transmissions greater than 1 may indicate that the UE 115-b can support non-consecutive inter-slot PDCCH repetition, consecutive inter-slot PDCCH repetition, or both.
[0160]
[0163] Furthermore, if the UE capabilities indicate that the UE 115-b supports reception of inter-slot control channel repetition (e.g., the UE 115-b supports a third configuration for inter-slot PDCCH repetition), the UE capabilities may further indicate the amount (e.g., maximum amount) of slots in which a search space set exists within the search space set periodicity, where a search space set is linked to another search space set for inter-slot PDCCH repetition. In other words, the UE capabilities may indicate the maximum search space set duration of a set of related search space sets linked for inter-slot PDCCH repetition. For example, the UE capabilities may include an indication of the maximum number of slots in which the UE 115-b supports one or more linked search space sets for inter-slot PDCCH repetition according to the search space set periodicity of the one or more linked search space sets.
[0161]
[0164] Moreover, the UE capabilities may indicate whether the UE 115-b can receive and / or decode PDCCH transmissions received during overlapping search space sets. In particular, the UE capabilities may indicate whether the UE 115-b can receive and / or decode PDCCH transmissions received during monitoring occasions of one or more search space sets that overlap in the time domain, the frequency domain, or both. For example, the UE capabilities may indicate that the UE 115-b supports reception of PDCCH transmissions received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, where the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both.
[0162]
[0165] In some aspects, the various capabilities of the UE 115-b and / or parameters of the configurations supported by the UE 115-b may be indicated via the UE capabilities at varying granularity. For example, the various capabilities of the UE 115-b and / or parameters of the configurations supported by the UE 115-b may be indicated for the UE 115-b (e.g., indicated on a per UE 115 basis), may be indicated for each frequency band of the UE 115-b (e.g., indicated on a per band basis), may be indicated for each frequency band combination of the UE 115-b (e.g., indicated on a per band combination basis), may be indicated for each band of the band combination (e.g., on a per FS basis), may be indicated for each component carrier of the band of the band combination (e.g., indicated on a per FSPC basis), or any combination thereof.
[0163]
[0166] At 310, the UE 115-b may receive from the base station 105-b a configuration for receiving multiple related downlink control channel transmissions. In this regard, the UE 115-b may receive an indication of a first configuration for SFN PDCCH transmission, a second configuration for intra-slot PDCCH repetition, a third configuration for inter-slot PDCCH repetition, or any combination thereof. The configuration transmitted at 310 may be indicated via control signaling, including an RRC message, a DCI message, a MAC-CE message, etc.
[0164]
[0167] In some aspects, the UE 115-b may receive 310 a configuration based on transmitting the UE capabilities at 305. In particular, the configuration received at 310 may be based on one or more parameters or characteristics of the UE 115-b indicated via the UE capabilities at 305. Accordingly, the base station 105-b may configure the UE 115-b for SFN PDCCH transmission, intra-slot PDCCH repetition, and / or inter-slot PDCCH repetition according to the various capabilities or limitations of the UE 115-b indicated in the UE capabilities. In other words, the base station 105-b may configure the UE 115-b with a configuration to receive a plurality of related PDCCH transmissions that instruct the UE 115-b to monitor a set of resources, a set of related CORESETs, a set of related search space sets, a set of related monitoring occasions, or any combination thereof for the SFN PDCCH transmission, intra-slot PDCCH repetition, inter-slot PDCCH repetition, or any combination thereof.
[0165]
[0168] For example, the configuration received at 310 may be based on any parameters or characteristics indicated in the UE capabilities, including, but not limited to, an ability to receive multiple related PDCCH transmissions associated with three or more CORESETs associated with a common BWP, the amount (e.g., maximum amount) of slots between related PDCCH transmissions that can be decoded by the UE 115-b, an ability to receive / decode related PDCCH transmissions within overlapping search space sets and / or monitoring occasions, the amount of PDCCH monitoring occasions in one or more slots monitored by the UE 115-b, the ability of the UE 115-b to monitor UE-specific and / or common search space sets, a format for PDCCH transmissions, parameters associated with a CORESET for intra-slot and / or inter-slot PDCCH repetition, the ability of the UE 115-b to perform span-based monitoring, the amount of CORESETs within a BWP, or any combination thereof.
[0166]
[0169] For example, in some cases, the UE capabilities may indicate that the UE 115-b supports span-based monitoring. In such cases, the UE capabilities may indicate that the UE 115-b supports monitoring of a quantity of control channel candidates per span of resources, a quantity of CCEs per span of resources, or both. In this example, the UE 115-b may receive a configuration based on the quantity of control channel candidates and / or CCEs that may be monitored per span of resources, as indicated in the UE capabilities.
[0167]
[0170] At 315, the UE 115-b may receive an indication of one or more CORESETs for receiving multiple related PDCCH transmissions. The one or more CORESETs may be indicated via control signaling, including an RRC message, a DCI message, a MAC-CE message, etc.
[0168]
[0171] In some aspects, the UE 115-b may receive an indication of one or more CORESETs based on transmitting the UE capabilities at 305, receiving the configuration at 310, or both. Additionally or alternatively, the indication of one or more CORESETs indicated at 315 may be indicated together with the configuration at 310. In this regard, in some implementations, the configuration at 310 and the CORESET at 315 may be indicated via a common control message.
[0169]
[0172] In some aspects, the CORESET received at 315 may be based on one or more parameters or characteristics of the UE 115-b indicated via the UE capabilities at 305. Accordingly, the base station 105-b may configure the UE 115-b with one or more CORESETs at 315 according to the various capabilities or limitations of the UE 115-b indicated in the UE capabilities. For example, the UE capabilities may indicate whether the UE 115-b can support monitoring of two linked (e.g., related) CORESETs if the two linked CORESETs have the same duration (e.g., the same CORESET duration), different durations, or both. In such a case, the base station 105-b may configure the UE 115-b with a first CORESET and a second CORESET at 315 based on (e.g., in accordance with) the indication that the CORESET durations of the linked CORESETs may be the same, different, or both. For example, the UE capabilities may indicate that the UE 115-b may receive inter-slot and / or intra-slot PDCCH repetitions associated with two linked CORESETs having different CORESET durations. In this example, the UE 115-b may receive an indication of a first CORESET having a first CORESET duration (e.g., two symbols) and a second CORESET having a second CORESET duration (e.g., three symbols), where the first CORESET and the second CORESET are linked for inter-slot and / or intra-slot PDCCH repetitions.
[0170]
[0173] At 320, the UE 115-b may receive an indication of one or more related search space sets. The one or more related search space sets may be indicated via control signaling, including an RRC message, a DCI message, a MAC-CE message, etc. For example, the UE 115-b may receive an indication of a first search space set and a second search space set, where the first search space set is related to (e.g., linked to) the second search space set. In some aspects, the UE 115-b may receive the indication of the one or more search space sets based on transmitting a UE capability at 305, receiving a configuration at 310, receiving a CORESET at 315, or any combination thereof. Additionally or alternatively, the indication of the one or more search space sets indicated at 315 may be indicated together with the configuration at 310, the CORESET at 315, or both. In this regard, in some implementations, the configuration at 310, the CORESET at 315, and the search space set at 320 may be indicated via a common control message.
[0171]
[0174] In some aspects, the one or more search space sets received at 320 may be based on one or more parameters or characteristics of the UE 115-b indicated via the UE capabilities at 305. Thus, the base station 105-b may configure the UE 115-b with one or more search space sets at 320 according to the various capabilities or limitations of the UE 115-b indicated in the UE capabilities. For example, if the UE capabilities indicate that the UE 115-b supports reception of inter-slot PDCCH repetition, the base station 105-b may transmit an indication of a first search space set and a second search space set associated with the first search space set. In this example, the first search space set and the second search space set may each include one or more monitoring occasions in different slots for inter-PDCCH repetition. For example, a first search space set may include a first monitoring occasion in a first slot, and a second search space set may include a second monitoring occasion in a second slot, where the first monitoring occasion and the second monitoring occasion are related or linked for inter-PDCCH repetition.
[0172]
[0175] As another example, the UE capabilities transmitted at 305 may include an indication of the amount of slots between a first PDCCH transmission and a second PDCCH transmission associated with the first PDCCH transmission that can be decoded by the UE 115-b. For example, the UE capabilities may indicate that the UE 115-b can decode associated PDCCH repetitions with up to three slots between the associated PDCCH repetitions due to inter-slot PDCCH repetitions. In this example, the base station 105-b may configure the UE 115-b with a first search space set and a second search space set associated with the first search space set according to the indication of the amount of slots. In particular, if the UE 115-b indicates a maximum amount of M slots between associated PDCCH transmissions that can be decoded by the UE 115-b, the base station 105-b may configure the first search space set and the second search space set such that monitoring occasions associated with each search space set are separated by M or fewer slots.
[0173]
[0176] As another example, if the UE capabilities indicate that the UE 115-b supports reception of intra-slot PDCCH repetitions, the base station 105-b may transmit an indication of a first search space set and a second search space set associated with the first search space set. In this example, the first search space set and the second search space set may each include one or more monitoring occasions in a common slot for inter-PDCCH repetitions. For example, the first search space set may include a first monitoring occasion in a first slot, and the second search space set may include a second monitoring occasion in the first slot, where the first monitoring occasion and the second monitoring occasion are related or linked for intra-PDCCH repetitions. In some aspects, the related or linked search space sets and / or sets of monitoring occasions for intra-slot PDCCH repetitions may at least partially overlap in the time domain, the frequency domain, or both. In such a case, the base station 105-b may configure the UE 115-b with an overlapping search space set and / or an overlapping set of monitoring occasions based on an indication in the UE capabilities that the UE 115-b supports reception of PDCCH transmissions received in the overlapping search space set and / or monitoring occasion.
[0174]
[0177] Additionally or alternatively, UE 115-b may receive an indication of one or more search space sets at 320 based on one or more additional parameters or characteristics indicated in the UE capabilities, including the amount of PDCCH monitoring occasions that may be monitored by UE 115-b, an indication that UE 115-b supports monitoring of UE-specific search space sets and / or common search space sets, DCI formats associated with intra-slot and / or inter-slot PDCCH repetitions, or any combination thereof.
[0175]
[0178] At 325, the UE 115-b may monitor a downlink control channel (e.g., a PDCCH) in accordance with the configuration received at 310. Moreover, the UE 115-b may monitor the control channel at 325 based on transmitting the UE capabilities at 305, receiving the configuration at 310, receiving the CORESET at 315, receiving the search space set at 320, or any combination thereof.
[0176]
[0179] For example, if UE 115-b is configured with a first search space set including a first monitoring occasion in a first slot and a second search space set including a second monitoring occasion in a second slot for inter-slot PDCCH repetition, UE 115-b may monitor the first search space set (e.g., the first monitoring occasion), the second search space set (e.g., the second monitoring occasion), or both for the inter-slot PDCCH repetition in accordance with the configuration received at 315 and the search space set received at 320. Similarly, as another example, if UE 115-b is configured with a first search space set including a first monitoring occasion in a first slot and a second search space set including a second monitoring occasion in the first slot for intra-slot PDCCH repetitions, UE 115-b may monitor the first search space set (e.g., the first monitoring occasion), the second search space set (e.g., the second monitoring occasion), or both for the intra-slot PDCCH repetitions in accordance with the configuration received at 315 and the search space set received at 320.
[0177]
[0180] As another example, if the UE capabilities transmitted at 305 indicate that the UE 115-b supports reception of SFN PDCCH transmissions, the base station 105-b may configure the UE 115-b with a CORESET that includes two TCI states at 315. In this example, the UE 115-b may monitor a control channel (e.g., a PDCCH) for SFN downlink control channel transmissions at 325 based on (e.g., in accordance with) the CORESET indication at 315.
[0178]
[0181] At 330, the UE 115-b may receive a first downlink control channel transmission (e.g., a first PDCCH transmission) from the base station 105-b. In some aspects, the base station 105-b may transmit the first PDCCH transmission at 330 in accordance with a 5G radio access technology, an NR radio access technology, or both. In some aspects, the UE 115-b may receive the first PDCCH transmission at 330 based on monitoring a downlink control channel (e.g., a PDCCH) at 325. Moreover, at 330, the UE 115-b may receive (and the base station 105-b may transmit) the first PDCCH transmission based on transmitting / receiving a UE capability at 305, transmitting / receiving a configuration at 310, transmitting / receiving a CORESET at 315, transmitting / receiving a search space set at 320, monitoring a downlink control channel at 325, or any combination thereof.
[0179]
[0182] At 335, the UE 115-b may receive a second downlink control channel transmission (e.g., a second PDCCH transmission) from the base station 105-b. In some aspects, the base station 105-b may transmit the second PDCCH transmission at 335 in accordance with a 5G radio access technology, an NR radio access technology, or both. As previously described herein, the second PDCCH transmission may be associated with (e.g., linked to, related to) the first PDCCH transmission. For example, the first PDCCH transmission and the second PDCCH transmission may include repetitions of the same PDCCH transmission and, therefore, may include the same data payload.
[0180]
[0183] In some aspects, the UE 115-b may receive 335 the second PDCCH transmission based on monitoring a downlink control channel (e.g., a PDCCH) at 325. Moreover, the UE 115-b may receive (and the base station 105-b may transmit) the second PDCCH transmission at 335 based on sending / receiving the UE capabilities at 305, sending / receiving a configuration at 310, sending / receiving a CORESET at 315, sending / receiving a search space set at 320, monitoring the downlink control channel at 325, sending / receiving the first PDCCH transmission at 330, or any combination thereof.
[0181]
[0184] For example, if the UE capabilities indicate that a first UE 115-b supports SFN PDCCH transmission, the UE 115-b may receive a configuration for SFN PDCCH transmission at 310. In this example, the UE 115-b may receive a first SFN PDCCH transmission at 330 and a second SFN PDCCH transmission at 335 in accordance with the configuration received at 310. As another example, if the UE 115-b is configured for intra-slot PDCCH repetition, the UE 115-b may receive a first PDCCH transmission within a slot at 330 and a second PDCCH transmission associated with (e.g., linked to, related to) the first PDCCH transmission within the same slot at 335. Similarly, if UE 115-b is configured for inter-slot PDCCH repetition, UE 115-b may receive a first PDCCH transmission in a first slot at 330 and may receive a second PDCCH transmission associated with (e.g., linked to, related to) the first PDCCH transmission in a second slot different from the first slot at 335.
[0182]
[0185] At 340, the UE 115-b may decode the first PDCCH transmission, the second PDCCH transmission, or both. In some aspects, the UE 115-b may decode the first PDCCH transmission and / or the second PDCCH transmission at 340 based on receiving the respective PDCCH transmission at 330 and / or 335. Moreover, the UE 115-b may decode the first PDCCH transmission and / or the second PDCCH transmission at 340 based on transmitting the UE capabilities at 305, receiving a configuration at 310, receiving a CORESET at 315, receiving a search space set at 320, monitoring the downlink control channel at 325, receiving the first PDCCH transmission at 330, receiving the second PDCCH transmission at 335, or any combination thereof.
[0183]
[0186] For example, as described above, the first PDCCH transmission and the second PDCCH transmission may include repetitions of the same PDCCH transmission and therefore may include the same data payload. In this regard, the UE 115-b may be configured to decode (e.g., demodulate) the data payload of each PDCCH transmission by decoding the first PDCCH transmission or the second PDCCH transmission. Additionally or alternatively, the UE 115-b may decode the data payload of each PDCCH transmission by performing a soft-combining procedure using both the first PDCCH transmission and the second PDCCH transmission.
[0184]
[0187] The techniques described herein may provide improved scheduling of wireless communications. In particular, by enabling a UE 115-b to inform a network (e.g., a base station 105-b) of its capability to support one or more configurations for PDCCH repetition (e.g., SFN PDCCH transmission, inter-slot PDCCH repetition, intra-slot PDCCH repetition), the techniques described herein may enable the base station 105-b to communicate with the UE 115-b using the respective configuration for PDCCH repetition depending on the characteristics of the network (e.g., amount of data traffic, noise) as well as the capabilities of the UE 115-b. Thus, the techniques described herein may enable more widespread use of communications using PDCCH repetition within a wireless communications system, thereby improving the reliability of wireless communications, improving transmit diversity, and further protecting wireless communications against interference.
[0185]
[0188] 4 shows a block diagram 400 of a device 405 that supports techniques for signaling user equipment capabilities for PDCCH repetition according to an aspect of the disclosure. The device 405 may be an example of an aspect of a UE 115 described herein. The device 405 may include a receiver 410, a transmitter 415, and a communications manager 420. The device 405 may also include a processor. Each of these components may be in communication with each other (e.g., via one or more buses).
[0186]
[0189] The receiver 410 may provide a means for receiving information such as packets, user data, control information, or any combination thereof associated with various traffic channels (e.g., control channels, data channels, traffic channels related to techniques for signaling user equipment capabilities for PDCCH repetition). The information may be passed on to other components of the device 405. The receiver 410 may utilize a single antenna or a set of multiple antennas.
[0187]
[0190] The transmitter 415 may provide a means for transmitting signals generated by other components of the device 405. For example, the transmitter 415 may transmit information such as packets associated with various traffic channels (e.g., control channels, data channels, traffic channels related to techniques for signaling user equipment capabilities for PDCCH repetition), user data, control information, or any combination thereof. In some examples, the transmitter 415 may be co-located with the receiver 410 in a transceiver module. The transmitter 415 may utilize a single antenna or a set of multiple antennas.
[0188]
[0191] The communications manager 420, the receiver 410, the transmitter 415, or various combinations or components thereof may be examples of means for implementing various aspects of the techniques for signaling user equipment capabilities for PDCCH repetition described herein. For example, the communications manager 420, the receiver 410, the transmitter 415, or various combinations or components thereof may support a method for implementing one or more of the functions described herein.
[0189]
[0192] In some examples, the communications manager 420, the receiver 410, the transmitter 415, or various combinations or components thereof may be implemented in hardware (e.g., in communications management circuitry). The hardware may include a processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof configured as or otherwise supporting a means for performing the functions described in this disclosure. In some examples, the processor and a memory coupled to the processor may be configured to perform one or more of the functions described herein (e.g., by executing, by the processor, instructions stored in the memory).
[0190]
[0193] Additionally or alternatively, in some examples, the communications manager 420, the receiver 410, the transmitter 415, or various combinations or components thereof may be implemented in code executed by a processor (e.g., as communications management software). When implemented in code executed by a processor, the functionality of the communications manager 420, the receiver 410, the transmitter 415, or various combinations or components thereof may be performed by a general-purpose processor (e.g., configured as or otherwise supporting a means for performing the functions described in this disclosure), a DSP, a central processing unit (CPU), a graphics processing unit (GPU), an ASIC, an FPGA, or any combination of these or other programmable logic devices.
[0191]
[0194] In some examples, the communications manager 420 may be configured to perform various operations (e.g., receive, monitor, transmit) using or in cooperation with the receiver 410, the transmitter 415, or both. For example, the communications manager 420 may be incorporated in combination with the receiver 410, the transmitter 415, or both to receive information from the receiver 410, send information to the transmitter 415, or receive information, transmit information, or perform various other operations described herein.
[0192]
[0195] Communications manager 420 may support wireless communications in a UE according to examples disclosed herein. For example, communications manager 420 may be configured with or otherwise support a means for transmitting, to a base station, a UE capability for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions are one or more of an SFN downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more CORESETs. Communications manager 420 may be configured with or otherwise support a means for receiving, from a base station based on the transmission of the UE capability, a configuration for receiving a plurality of related downlink control channel transmissions. Communications manager 420 may be configured with or otherwise support a means for monitoring the downlink control channel according to the configuration.
[0193]
[0196] By including or configuring the communications manager 420 according to examples described herein, the device 405 (e.g., a processor controlling or otherwise coupled to the receiver 410, the transmitter 415, the communications manager 420, or a combination thereof) may support techniques for improved scheduling of wireless communications. In particular, by enabling the UE 115 to inform the network (e.g., the base station 105) of their ability to support one or more configurations for PDCCH repetition (e.g., SFN PDCCH transmission, inter-slot PDCCH repetition, intra-slot PDCCH repetition), the techniques described herein may enable the network to communicate with the UE 115 using the respective configurations for PDCCH repetition depending on the characteristics of the network (e.g., amount of data traffic, noise) as well as the capabilities of the UE 115. Thus, the techniques described herein may enable more widespread use of communications using PDCCH repetition within wireless communications systems, thereby improving reliability of wireless communications, improving transmit diversity, and protecting wireless communications against interference.
[0194]
[0197] 5 shows a block diagram 500 of a device 505 that supports techniques for signaling user equipment capabilities for PDCCH repetition according to an aspect of the disclosure. The device 505 may be an example of an aspect of the device 405 or UE 115 described herein. The device 505 may include a receiver 510, a transmitter 515, and a communications manager 520. The device 505 may also include a processor. Each of these components may be in communication with each other (e.g., via one or more buses).
[0195]
[0198] The receiver 510 may provide a means for receiving information such as packets, user data, control information, or any combination thereof associated with various traffic channels (e.g., control channels, data channels, traffic channels related to techniques for signaling user equipment capabilities for PDCCH repetition). The information may be passed on to other components of the device 505. The receiver 510 may utilize a single antenna or a set of multiple antennas.
[0196]
[0199] The transmitter 515 may provide a means for transmitting signals generated by other components of the device 505. For example, the transmitter 515 may transmit information such as packets associated with various traffic channels (e.g., control channels, data channels, traffic channels related to techniques for signaling user equipment capabilities for PDCCH repetition), user data, control information, or any combination thereof. In some examples, the transmitter 515 may be co-located with the receiver 510 in a transceiver module. The transmitter 515 may utilize a single antenna or a set of multiple antennas.
[0197]
[0200] The device 505, or various components thereof, may be an example of a means for implementing various aspects of the techniques for signaling user equipment capabilities for PDCCH repetition described herein. For example, the communications manager 520 may include a UE capabilities transmission manager 525, a configuration reception manager 530, a downlink control channel monitoring manager 535, or any combination thereof. The communications manager 520 may be an example of an aspect of the communications manager 420 described herein. In some examples, the communications manager 520, or various components thereof, may be configured to use or otherwise cooperate with the receiver 510, the transmitter 515, or both to perform various operations (e.g., receiving, monitoring, transmitting). For example, the communications manager 520 may be incorporated in combination with the receiver 510, the transmitter 515, or both to receive information from the receiver 510, send information to the transmitter 515, or receive information, transmit information, or perform various other operations described herein.
[0198]
[0201] The communications manager 520 may support wireless communications in the UE according to examples disclosed herein. The UE capability transmission manager 525 may be configured as or otherwise support a means for transmitting, to a base station, a UE capability for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions are one or more of an SFN downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more CORESETs. The configuration reception manager 530 may be configured as or otherwise support a means for receiving, from the base station based on the transmission of the UE capability, a configuration for receiving a plurality of related downlink control channel transmissions. The downlink control channel monitoring manager 535 may be configured as or otherwise support a means for monitoring the downlink control channel according to the configuration.
[0199]
[0202] 6 shows a block diagram 600 of a communications manager 620 supporting techniques for signaling user equipment capabilities for PDCCH repetition according to aspects of the present disclosure. The communications manager 620 may be an example of aspects of the communications manager 420, the communications manager 520, or both described herein. The communications manager 620, or various components thereof, may be an example of a means for implementing various aspects of the techniques for signaling user equipment capabilities for PDCCH repetition described herein. For example, the communications manager 620 may include a UE capabilities transmission manager 625, a configuration reception manager 630, a downlink control channel monitoring manager 635, a search space set reception manager 640, a CORESET reception manager 645, a downlink control channel reception manager 650, or any combination thereof. Each of these components may communicate with one another directly or indirectly (e.g., via one or more buses).
[0200]
[0203] The communications manager 620 may support wireless communications in the UE according to examples disclosed herein. The UE capability transmission manager 625 may be configured as or otherwise support a means for transmitting, to a base station, a UE capability for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions are one or more of an SFN downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more CORESETs. The configuration reception manager 630 may be configured as or otherwise support a means for receiving, from the base station based on the transmission of the UE capability, a configuration for receiving a plurality of related downlink control channel transmissions. The downlink control channel monitoring manager 635 may be configured as or otherwise support a means for monitoring the downlink control channel according to the configuration.
[0201]
[0204] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support a means for transmitting, as part of the UE capabilities, an indication that the UE supports reception of multiple related downlink control channel transmissions associated with three or more CORESETs, where the three or more CORESETs are associated with a common BWP, and where receiving the configuration is based on the indication that the UE supports reception of multiple related downlink control channel transmissions associated with the three or more CORESETs.
[0202]
[0205] In some examples, the UE capabilities indicate that the UE supports reception of inter-slot downlink control channel repetition, and the search space set reception manager 640 may be configured as or otherwise support a means for receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, where a first monitoring occasion of the first search space set in a first slot is associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, and where the monitoring is based on an indication of the first search space set, the second search space set, or both.
[0203]
[0206] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support a means for transmitting, as part of the UE capabilities, an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission that can be decoded by the UE, where receiving the indication of the first search space set, the second search space set, or both is based on the quantity of slots.
[0204]
[0207] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support, as part of the UE capabilities, a means for the UE to transmit an indication of the maximum number of slots that it supports for inter-slot downlink control channel repetition in accordance with the search space set periodicity of the one or more linked search space sets.
[0205]
[0208] In some examples, the UE capabilities indicate that the UE supports reception of intra-slot downlink control channel repetition, and the search space set reception manager 640 may be configured as or otherwise support a means for receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, where a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, where both the first monitoring occasion and the second monitoring occasion are located in a common slot, and where the monitoring is based on an indication of the first search space set, the second search space set, or both.
[0206]
[0209] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support a means for transmitting, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, where the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and where receiving the indication of the first search space set, the second search space set, or both is based on an indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both.
[0207]
[0210] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support a means for transmitting, as part of the UE capabilities, an indication of the quantity of downlink control channel monitoring occasions in one or more slots monitored by the UE. In some examples, the search space set reception manager 640 may be configured with or otherwise support a means for receiving, from the base station based on the indication of the quantity of downlink control channel monitoring occasions, an indication of a first search space set and a second search space set associated with the first search space set, where monitoring is based on an indication of the first search space set, the second search space set, or both.
[0208]
[0211] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support a means for transmitting, as part of the UE capabilities, an indication that the UE supports monitoring of a set of UE-specific search space sets, a set of common search space sets, or both. In some examples, the search space set reception manager 640 may be configured with or otherwise support a means for receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set based on an indication that the UE supports monitoring of a set of search space sets associated with the UE, a set of common search space sets, or both, where monitoring is based on the indication of the first search space set, the second search space set, or both.
[0209]
[0212] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support a means for transmitting, as part of the UE capabilities, an indication of a format for DCI associated with intra-slot downlink control channel repetition and / or inter-slot downlink control channel repetition. In some examples, the search space set reception manager 640 may be configured with or otherwise support a means for receiving, from the base station based on the indication of the format, an indication of a first search space set and a second search space set associated with the first search space set, where the monitoring is based on the indication of the first search space set, the second search space set, or both.
[0210]
[0213] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support a means for transmitting, as part of the UE capabilities, an indication that the UE supports reception of a first downlink control channel transmission associated with a first CORESET associated with a first set of parameters and a second downlink control channel transmission associated with the first downlink control channel transmission and associated with a second CORESET associated with a second set of parameters, where receiving the configuration is based on the indication that the UE supports reception of the first downlink control channel transmission and the second downlink control channel transmission.
[0211]
[0214] In some examples, the first set of parameters, the second set of parameters, or both include a CORESET duration, a CCE-resource element group mapping type, a precoding granularity, a CORESET pool index, or any combination thereof. In some examples, the first set of parameters differs from the second set of parameters.
[0212]
[0215] In some examples, the UE capabilities transmission manager 625 may be configured with or otherwise support as part of the UE capabilities a means for transmitting an indication that the UE supports monitoring of the quantity of control channel candidates per span of resources, the quantity of CCEs per span of resources, or both, where receiving the configuration is based on the indication of the quantity of control channel candidates per span of resources, the quantity of CCEs per span of resources, or both.
[0213]
[0216] In some examples, the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the CORESET reception manager 645 may be configured as or otherwise support a means for receiving, from the base station, a CORESET indication including two TCI states, where the monitoring is based on the CORESET indication.
[0214]
[0217] In some examples, the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the UE capabilities transmission manager 625 may be configured with or otherwise support, as part of the UE capabilities, a means for transmitting an indication of the amount of CORESET in the BWP, where receiving the configuration is based on the indication of the amount of CORESET in the BWP.
[0215]
[0218] In some examples, downlink control channel reception manager 650 may be configured with or otherwise support a means for receiving, from a base station based on monitoring, a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, where the first downlink control channel transmission and the second downlink control channel transmission are transmitted based on a configuration.
[0216]
[0219] In some examples, the multiple related downlink control channel transmissions are transmitted according to a 5G radio access technology, an NR access technology, or both.
[0217]
[0220] 7 shows a diagram of a system 700 including a device 705 supporting techniques for signaling user equipment capabilities for PDCCH repetition according to aspects of the present disclosure. The device 705 may be an example of or include components of the device 405, device 505, or UE 115 described herein. The device 705 may communicate wirelessly with one or more base stations 105, UEs 115, or any combination thereof. The device 705 may include components for two-way voice and data communication, including components for transmitting and receiving communications, such as a communications manager 720, an input / output (I / O) controller 710, a transceiver 715, an antenna 725, memory 730, code 735, and a processor 740. These components may be in electronic communication or otherwise coupled (e.g., operatively, communicatively, functionally, electronically, electrically) via one or more buses (e.g., bus 745).
[0218]
[0221] The I / O controller 710 may manage input and output signals for the device 705. The I / O controller 710 may also manage peripherals not built into the device 705. In some cases, the I / O controller 710 may represent a physical connection or port to an external peripheral. In some cases, the I / O controller 710 may utilize an operating system such as iOS®, ANDROID®, MS-DOS®, MS-WINDOWS®, OS / 2®, UNIX®, LINUX®, or another known operating system. Additionally or alternatively, the I / O controller 710 may represent or interact with a modem, keyboard, mouse, touchscreen, or similar device. In some cases, the I / O controller 710 may be implemented as part of a processor, such as the processor 740. In some cases, a user may interact with the device 705 through the I / O controller 710 or through hardware components controlled by the I / O controller 710.
[0219]
[0222] In some cases, the device 705 may include a single antenna 725. However, in some other cases, the device 705 may have two or more antennas 725 that may be capable of simultaneously transmitting or receiving multiple wireless transmissions. The transceiver 715 may communicate bidirectionally via one or more antennas 725, wired links, or wireless links, as described herein. For example, the transceiver 715 may represent a wireless transceiver and may communicate bidirectionally with another wireless transceiver. The transceiver 715 may also include a modem for modulating packets and providing the modulated packets to one or more antennas 725 for transmission, and for demodulating packets received from the one or more antennas 725. The transceiver 715, or the transceiver 715 and one or more antennas 725, may be an example of the transmitter 415, transmitter 515, receiver 410, receiver 510, or any combination or component thereof, described herein.
[0220]
[0223] Memory 730 may include random access memory (RAM) and read-only memory (ROM). Memory 730 may store computer-readable, computer-executable code 735 including instructions that, when executed by processor 740, cause device 705 to perform various functions described herein. Code 735 may be stored on a non-transitory computer-readable medium, such as system memory or another type of memory. In some cases, code 735 may not be directly executable by processor 740, but may (e.g., when compiled and executed) cause a computer to perform functions described herein. In some cases, memory 730 may include a basic I / O system (BIOS), which may control basic hardware or software operations, such as interaction with peripheral components or devices, among other things.
[0221]
[0224] The processor 740 may include an intelligent hardware device (e.g., a general-purpose processor, a DSP, a CPU, a GPU, a microcontroller, an ASIC, an FPGA, a programmable logic device, discrete gate or transistor logic components, discrete hardware components, or any combination thereof). In some cases, the processor 740 may be configured to operate a memory array using a memory controller. In some other cases, the memory controller may be incorporated into the processor 740. The processor 740 may be configured to execute computer-readable instructions stored in a memory (e.g., memory 730) to cause the device 705 to perform various functions (e.g., functions or tasks supporting techniques for signaling user equipment capabilities for PDCCH repetition). For example, the device 705 or a component of the device 705 may include the processor 740 and the memory 730 coupled to the processor 740, where the processor 740 and the memory 730 are configured to perform various functions described herein.
[0222]
[0225] Communications manager 720 may support wireless communications in a UE in accordance with examples disclosed herein. For example, communications manager 720 may be configured as or otherwise support a means for transmitting, to a base station, a UE capability for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions are one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs. Communications manager 720 may be configured as or otherwise support a means for receiving, from a base station based on the transmission of the UE capability, a configuration for receiving a plurality of related downlink control channel transmissions. Communications manager 720 may be configured as or otherwise support a means for monitoring the downlink control channel in accordance with the configuration.
[0223]
[0226] By including or configuring a communications manager 720 according to examples described herein, the device 705 may support techniques for improved scheduling of wireless communications. In particular, by enabling the UE 115 to inform the network (e.g., base station 105) of their ability to support one or more configurations for PDCCH repetition (e.g., SFN PDCCH transmission, inter-slot PDCCH repetition, intra-slot PDCCH repetition), the techniques described herein may enable the network to communicate with the UE 115 using the respective configurations for PDCCH repetition depending on the characteristics of the network (e.g., amount of data traffic, noise) as well as the capabilities of the UE 115. Thus, the techniques described herein may enable more widespread use of communications using PDCCH repetition within a wireless communications system, thereby improving reliability of wireless communications, improving transmit diversity, and further protecting wireless communications against interference.
[0224]
[0227] In some examples, communications manager 720 may be configured to perform various operations (e.g., receiving, monitoring, transmitting) using or otherwise cooperating with transceiver 715, one or more antennas 725, or any combination thereof. Although communications manager 720 is shown as a separate component, in some examples, one or more functions described with reference to communications manager 720 may be supported by or performed by processor 740, memory 730, code 735, or any combination thereof. For example, code 735 may include instructions executable by processor 740 to cause device 705 to perform various aspects of techniques for signaling user equipment capabilities for PDCCH repetition described herein, or processor 740 and memory 730 may be configured to perform or support such operations in other ways.
[0225]
[0228] 8 shows a block diagram 800 of a device 805 that supports techniques for signaling user equipment capabilities for PDCCH repetition according to an aspect of the present disclosure. The device 805 may be an example of an aspect of a base station 105 described herein. The device 805 may include a receiver 810, a transmitter 815, and a communications manager 820. The device 805 may also include a processor. Each of these components may be in communication with each other (e.g., via one or more buses).
[0226]
[0229] The receiver 810 may provide means for receiving information such as packets, user data, control information, or any combination thereof associated with various traffic channels (e.g., control channels, data channels, traffic channels related to techniques for signaling user equipment capabilities for PDCCH repetition). The information may be passed on to other components of the device 805. The receiver 810 may utilize a single antenna or a set of multiple antennas.
[0227]
[0230] The transmitter 815 may provide a means for transmitting signals generated by other components of the device 805. For example, the transmitter 815 may transmit information such as packets associated with various traffic channels (e.g., control channels, data channels, traffic channels related to techniques for signaling user equipment capabilities for PDCCH repetition), user data, control information, or any combination thereof. In some examples, the transmitter 815 may be co-located with the receiver 810 in a transceiver module. The transmitter 815 may utilize a single antenna or a set of multiple antennas.
[0228]
[0231] The communications manager 820, the receiver 810, the transmitter 815, or various combinations or components thereof may be examples of means for implementing various aspects of the techniques for signaling user equipment capabilities for PDCCH repetition described herein. For example, the communications manager 820, the receiver 810, the transmitter 815, or various combinations or components thereof may support a method for implementing one or more of the functions described herein.
[0229]
[0232] In some examples, the communications manager 820, the receiver 810, the transmitter 815, or various combinations or components thereof may be implemented in hardware (e.g., in communications management circuitry). The hardware may include a processor, a DSP, an ASIC, an FPGA or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof configured as or otherwise supporting a means for performing the functions described in this disclosure. In some examples, a processor and a memory coupled to the processor may be configured to perform one or more of the functions described herein (e.g., by the processor executing instructions stored in the memory).
[0230]
[0233] Additionally or alternatively, in some examples, the communications manager 820, the receiver 810, the transmitter 815, or various combinations or components thereof may be implemented in code executed by a processor (e.g., as communications management software). When implemented in code executed by a processor, the functionality of the communications manager 820, the receiver 810, the transmitter 815, or various combinations or components thereof may be performed by a general-purpose processor, a DSP, a CPU, a GPU, an ASIC, an FPGA, or any combination thereof or other programmable logic device (e.g., configured as or otherwise supporting a means for performing the functions described in this disclosure).
[0231]
[0234] In some examples, the communications manager 820 may be configured to perform various operations (e.g., receiving, monitoring, transmitting) using or in cooperation with the receiver 810, the transmitter 815, or both. For example, the communications manager 820 may be incorporated in combination with the receiver 810, the transmitter 815, or both to receive information from the receiver 810, send information to the transmitter 815, or receive information, transmit information, or perform various other operations described herein.
[0232]
[0235] Communications manager 820 may support wireless communications in a base station according to examples disclosed herein. For example, communications manager 820 may be configured as or otherwise support a means for receiving, from a UE, a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions are one or more of an SFN downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more CORESETs. Communications manager 820 may be configured as or otherwise support a means for transmitting, to the UE based on receipt of the UE capability, a configuration for transmitting a plurality of related downlink control channel transmissions. Communications manager 820 may be configured as or otherwise support a means for communicating with the UE via the downlink control channel according to the configuration.
[0233]
[0236] By including or configuring the communications manager 820 according to examples described herein, the device 805 (e.g., a processor controlling or otherwise coupled to the receiver 810, the transmitter 815, the communications manager 820, or a combination thereof) may support techniques for improved scheduling of wireless communications. In particular, by enabling the UE 115 to inform the network (e.g., the base station 105) of their ability to support one or more configurations for PDCCH repetition (e.g., SFN PDCCH transmission, inter-slot PDCCH repetition, intra-slot PDCCH repetition), the techniques described herein may enable the network to communicate with the UE 115 using the respective configurations for PDCCH repetition depending on the characteristics of the network (e.g., amount of data traffic, noise) as well as the capabilities of the UE 115. Thus, the techniques described herein may enable more widespread use of communications using PDCCH repetition within a wireless communications system, thereby improving reliability of wireless communications, improving transmit diversity, and further protecting wireless communications against interference.
[0234]
[0237] 9 shows a block diagram 900 of a device 905 that supports techniques for signaling user equipment capabilities for PDCCH repetition according to an aspect of the disclosure. The device 905 may be an example of an aspect of the device 805 or base station 105 described herein. The device 905 may include a receiver 910, a transmitter 915, and a communications manager 920. The device 905 may also include a processor. Each of these components may be in communication with each other (e.g., via one or more buses).
[0235]
[0238] The receiver 910 may provide a means for receiving information such as packets, user data, control information, or any combination thereof associated with various traffic channels (e.g., control channels, data channels, traffic channels related to techniques for signaling user equipment capabilities for PDCCH repetition). The information may be passed on to other components of the device 905. The receiver 910 may utilize a single antenna or a set of multiple antennas.
[0236]
[0239] The transmitter 915 may provide a means for transmitting signals generated by other components of the device 905. For example, the transmitter 915 may transmit information such as packets associated with various traffic channels (e.g., control channels, data channels, traffic channels related to techniques for signaling user equipment capabilities for PDCCH repetition), user data, control information, or any combination thereof. In some examples, the transmitter 915 may be co-located with the receiver 910 in a transceiver module. The transmitter 915 may utilize a single antenna or a set of multiple antennas.
[0237]
[0240] Device 905, or various components thereof, may be an example of a means for implementing various aspects of techniques for signaling user equipment capabilities for PDCCH repetition described herein. For example, communications manager 920 may include a UE capabilities receive manager 925, a configuration transmit manager 930, a UE communications manager 935, or any combination thereof. Communications manager 920 may be an example of an aspect of communications manager 820 described herein. In some examples, communications manager 920, or various components thereof, may be configured to use or otherwise cooperate with receiver 910, transmitter 915, or both to perform various operations (e.g., receiving, monitoring, transmitting). For example, communications manager 920 may be incorporated in combination with receiver 910, transmitter 915, or both to receive information from receiver 910, send information to transmitter 915, or receive information, transmit information, or perform various other operations described herein.
[0238]
[0241] Communications manager 920 may support wireless communications in a base station according to examples disclosed herein. UE capabilities reception manager 925 may be configured as or otherwise support a means for receiving, from a UE, a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions are one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs. Configuration transmission manager 930 may be configured as or otherwise support a means for transmitting, to the UE based on reception of the UE capabilities, a configuration for transmitting a plurality of related downlink control channel transmissions. UE communications manager 935 may be configured as or otherwise support a means for communicating with the UE via the downlink control channel according to the configuration.
[0239]
[0242] 10 shows a block diagram 1000 of a communications manager 1020 supporting techniques for signaling user equipment capabilities for PDCCH repetition according to an aspect of the present disclosure. The communications manager 1020 may be an example of aspects of the communications manager 820, the communications manager 920, or both described herein. The communications manager 1020, or various components thereof, may be an example of a means for implementing various aspects of the techniques for signaling user equipment capabilities for PDCCH repetition described herein. For example, the communications manager 1020 may include a UE capabilities receive manager 1025, a configuration transmission manager 1030, a UE communications manager 1035, a search space set transmission manager 1040, a CORESET transmission manager 1045, a downlink control channel transmission manager 1050, or any combination thereof. Each of these components may communicate with one another directly or indirectly (e.g., via one or more buses).
[0240]
[0243] The communications manager 1020 may support wireless communications in the base station according to examples disclosed herein. The UE capabilities reception manager 1025 may be configured as or otherwise support a means for receiving, from the UE, a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions are one or more of an SFN downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more CORESETs. The configuration transmission manager 1030 may be configured as or otherwise support a means for transmitting, to the UE based on receipt of the UE capabilities, a configuration for transmitting a plurality of related downlink control channel transmissions. The UE communications manager 1035 may be configured as or otherwise support a means for communicating with the UE via the downlink control channel according to the configuration.
[0241]
[0244] In some examples, the UE capabilities reception manager 1025 may be configured with or otherwise support a means for receiving, as part of the UE capabilities, an indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with three or more CORESETs, where the three or more CORESETs are associated with a common BWP, and where transmitting the configuration is based on the indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with the three or more CORESETs.
[0242]
[0245] In some examples, the UE capabilities indicate that the UE supports reception of inter-slot downlink control channel repetition, and the search space set transmission manager 1040 may be configured as or otherwise support a means for transmitting to the UE an indication of a first search space set and a second search space set associated with the first search space set, where a first monitoring occasion of the first search space set in a first slot is associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, and where communicating is based on the indication of the first search space set, the second search space set, or both.
[0243]
[0246] In some examples, the UE capabilities reception manager 1025 may be configured with or otherwise support a means for receiving, as part of the UE capabilities, an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission that can be decoded by the UE, where transmitting the indication of the first search space set, the second search space set, or both, is based on the quantity of slots.
[0244]
[0247] In some examples, the UE capabilities reception manager 1025 may be configured with or otherwise support, as part of the UE capabilities, a means for the UE to receive an indication of the maximum number of slots that it supports for inter-slot downlink control channel repetition according to the search space set periodicity of the one or more linked search space sets.
[0245]
[0248] In some examples, the UE capabilities indicate that the UE supports reception of intra-slot downlink control channel repetition, and the search space set transmission manager 1040 may be configured as or otherwise support a means for transmitting to the UE an indication of a first search space set and a second search space set associated with the first search space set, where a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, where both the first monitoring occasion and the second monitoring occasion are located in a common slot, and where communicating is based on the indication of the first search space set, the second search space set, or both.
[0246]
[0249] In some examples, the UE capabilities reception manager 1025 may be configured with or otherwise support a means for receiving, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, where the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and where sending the indication of the first search space set, the second search space set, or both is based on the indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both.
[0247]
[0250] In some examples, the UE capabilities receive manager 1025 may be configured with or otherwise support a means for receiving, as part of the UE capabilities, an indication of a quantity of downlink control channel monitoring occasions in one or more slots monitored by the UE. In some examples, the search space set transmit manager 1040 may be configured with or otherwise support a means for transmitting, to the UE based on the indication of the quantity of downlink control channel monitoring occasions, an indication of a first search space set and a second search space set associated with the first search space set, where communicating with the UE is based on the indication of the first search space set, the second search space set, or both.
[0248]
[0251] In some examples, the UE capabilities receive manager 1025 may be configured with or otherwise support a means for receiving, as part of the UE capabilities, an indication that the UE supports monitoring of a set of UE-specific search space sets, a set of common search space sets, or both. In some examples, the search space set transmit manager 1040 may be configured with or otherwise support a means for transmitting, to the UE, an indication of a first search space set and a second search space set associated with the first search space set, based on the indication that the UE supports monitoring of a set of search space sets associated with the UE, a set of common search space sets, or both, where communicating with the UE is based on the indication of the first search space set, the second search space set, or both.
[0249]
[0252] In some examples, the UE capabilities receive manager 1025 may be configured with or otherwise support a means for receiving, as part of the UE capabilities, an indication of a format for DCI associated with intra-slot downlink control channel repetition and / or inter-slot downlink control channel repetition. In some examples, the search space set transmit manager 1040 may be configured with or otherwise support a means for transmitting, to the UE based on the indication of the format, an indication of a first search space set and a second search space set associated with the first search space set, where communicating with the UE is based on the indication of the first search space set, the second search space set, or both.
[0250]
[0253] In some examples, the UE capabilities reception manager 1025 may be configured with or otherwise support a means for receiving, as part of the UE capabilities, an indication that the UE supports reception of a first downlink control channel transmission associated with a first CORESET associated with a first set of parameters and a second downlink control channel transmission associated with the first downlink control channel transmission and associated with a second CORESET associated with a second set of parameters, wherein transmitting the configuration is based on the indication that the UE supports reception of the first downlink control channel transmission and the second downlink control channel transmission.
[0251]
[0254] In some examples, the first set of parameters, the second set of parameters, or both include a CORESET duration, a CCE-resource element group mapping type, a precoding granularity, a CORESET pool index, or any combination thereof. In some examples, the first set of parameters differs from the second set of parameters.
[0252]
[0255] In some examples, the UE capabilities reception manager 1025 may be configured with or otherwise support a means for receiving, as part of the UE capabilities, an indication that the UE supports monitoring of the quantity of control channel candidates per span of resources, the quantity of CCEs per span of resources, or both, where transmitting the configuration is based on the indication of the quantity of control channel candidates per span of resources, the quantity of CCEs per span of resources, or both.
[0253]
[0256] In some examples, the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the CORESET transmission manager 1045 may be configured with or otherwise support a means for transmitting an indication of CORESET including two TCI states to the UE, where communicating is based on the indication of CORESET.
[0254]
[0257] In some examples, the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the UE capabilities reception manager 1025 may be configured as or otherwise support a means for receiving, as part of the UE capabilities, an indication of the amount of CORESET in the BWP, where transmitting the configuration is based on the indication of the amount of CORESET in the BWP.
[0255]
[0258] In some examples, to support communicating with the UE, the downlink control channel transmission manager 1050 may be configured with or otherwise support a means for transmitting, to the UE, a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, where the first downlink control channel transmission and the second downlink control channel transmission are transmitted based on a configuration.
[0256]
[0259] In some examples, the multiple related downlink control channel transmissions are transmitted according to a 5G radio access technology, an NR access technology, or both.
[0257]
[0260] 11 shows a diagram of a system 1100 including a device 1105 supporting techniques for signaling user equipment capabilities for PDCCH repetition according to aspects of the present disclosure. The device 1105 may be an example of or include components of device 805, device 905, or base station 105 described herein. The device 1105 may be in wireless communication with one or more base stations 105, UEs 115, or any combination thereof. The device 1105 may include components for two-way voice and data communication, including components for transmitting and receiving communications, such as a communications manager 1120, a network communications manager 1110, a transceiver 1115, an antenna 1125, a memory 1130, code 1135, a processor 1140, and an inter-station communications manager 1145. These components may be in electronic communication or otherwise coupled (e.g., operatively, communicatively, functionally, electronically, electrically) via one or more buses (e.g., bus 1150).
[0258]
[0261] The network communications manager 1110 may manage communications with the core network 130 (e.g., via one or more wired backhaul links). For example, the network communications manager 1110 may manage the forwarding of data communications for client devices, such as one or more UEs 115.
[0259]
[0262] In some cases, the device 1105 may include a single antenna 1125. However, in some other cases, the device 1105 may have two or more antennas 1125 that may be capable of simultaneously transmitting or receiving multiple wireless transmissions. The transceiver 1115 may communicate bidirectionally via one or more antennas 1125, a wired link, or a wireless link, as described herein. For example, the transceiver 1115 may represent a wireless transceiver and may communicate bidirectionally with another wireless transceiver. The transceiver 1115 may also include a modem for modulating packets and providing the modulated packets to one or more antennas 1125 for transmission, and for demodulating packets received from the one or more antennas 1125. The transceiver 1115, or the transceiver 1115 and one or more antennas 1125, may be an example of the transmitter 815, transmitter 915, receiver 810, receiver 910, or any combination or component thereof, described herein.
[0260]
[0263] The memory 1130 may include RAM and ROM. The memory 1130 may store computer-readable, computer-executable code 1135 including instructions that, when executed by the processor 1140, cause the device 1105 to perform various functions described herein. The code 1135 may be stored on a non-transitory computer-readable medium, such as system memory or another type of memory. In some cases, the code 1135 may not be directly executable by the processor 1140, but may (e.g., when compiled and executed) cause the computer to perform the functions described herein. In some cases, the memory 1130 may include a BIOS, which may control basic hardware or software operations, such as interaction with peripheral components or devices, among other things.
[0261]
[0264] The processor 1140 may include an intelligent hardware device (e.g., a general-purpose processor, a DSP, a CPU, a GPU, a microcontroller, an ASIC, an FPGA, a programmable logic device, discrete gate or transistor logic components, discrete hardware components, or any combination thereof). In some cases, the processor 1140 may be configured to operate a memory array using a memory controller. In some other cases, the memory controller may be incorporated into the processor 1140. The processor 1140 may be configured to execute computer-readable instructions stored in a memory (e.g., memory 1130) to cause the device 1105 to perform various functions (e.g., functions or tasks supporting techniques for signaling user equipment capabilities for PDCCH repetition). For example, the device 1105 or components of the device 1105 may include the processor 1140 and a memory 1130 coupled to the processor 1140, where the processor 1140 and the memory 1130 are configured to perform various functions described herein.
[0262]
[0265] The inter-station communications manager 1145 may manage communications with other base stations 105 and may include a controller or scheduler for cooperating with the other base stations 105 to control communications with the UE 115. For example, the inter-station communications manager 1145 may coordinate scheduling for transmissions to the UE 115 for various interference mitigation techniques, such as beamforming or joint transmission. In some examples, the inter-station communications manager 1145 may provide an X2 interface within the LTE / LTE-A wireless communications network technology for communications between the base stations 105.
[0263]
[0266] The communications manager 1120 may support wireless communications in a base station according to examples disclosed herein. For example, the communications manager 1120 may be configured as or otherwise support a means for receiving, from a UE, a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions are one or more of an SFN downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more CORESETs. The communications manager 1120 may be configured as or otherwise support a means for transmitting, to the UE based on receipt of the UE capability, a configuration for transmitting a plurality of related downlink control channel transmissions. The communications manager 1120 may be configured as or otherwise support a means for communicating with the UE via the downlink control channel according to the configuration.
[0264]
[0267] By including or configuring the communications manager 1120 according to examples described herein, the device 1105 may support techniques for improved scheduling of wireless communications. In particular, by enabling the UE 115 to inform the network (e.g., the base station 105) of their ability to support one or more configurations for PDCCH repetition (e.g., SFN PDCCH transmission, inter-slot PDCCH repetition, intra-slot PDCCH repetition), the techniques described herein may enable the network to communicate with the UE 115 using the respective configurations for PDCCH repetition depending on the characteristics of the network (e.g., amount of data traffic, noise) as well as the capabilities of the UE 115. Thus, the techniques described herein may enable more widespread use of communications using PDCCH repetition within a wireless communications system, thereby improving reliability of wireless communications, improving transmit diversity, and protecting wireless communications against interference.
[0265]
[0268] In some examples, communications manager 1120 may be configured to perform various operations (e.g., receiving, monitoring, transmitting) using or otherwise cooperating with transceiver 1115, one or more antennas 1125, or any combination thereof. Although communications manager 1120 is shown as a separate component, in some examples, one or more functions described with reference to communications manager 1120 may be supported by or performed by processor 1140, memory 1130, code 1135, or any combination thereof. For example, code 1135 may include instructions executable by processor 1140 to cause device 1105 to perform various aspects of techniques for signaling user equipment capabilities for PDCCH repetition as described herein, or processor 1140 and memory 1130 may be configured to perform or support such operations in other ways.
[0266]
[0269] FIG. 12 shows a flowchart illustrating a method 1200 supporting a technique for signaling user equipment capabilities for PDCCH repetition according to an aspect of the present disclosure. The operations of method 1200 may be implemented by a UE or components thereof described herein. For example, the operations of method 1200 may be performed by the UE 115 described with reference to FIGS. 1-7. In some examples, the UE may execute a set of instructions to control functional elements of the UE to perform the described functionality. Additionally or alternatively, the UE may perform aspects of the described functionality using dedicated hardware.
[0267]
[0270] At 1205, the method may include transmitting, to a base station, UE capabilities for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs. The operations of 1205 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1205 may be performed by a UE capabilities transmission manager 625 described with reference to FIG. 6.
[0268]
[0271] At 1210, the method may include receiving, from the base station, a configuration for receiving a plurality of related downlink control channel transmissions based at least in part on the transmission of the UE capabilities. The operations of 1210 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1210 may be performed by the configuration reception manager 630 described with reference to FIG. 6.
[0269]
[0272] At 1215, the method may include monitoring the downlink control channel according to the configuration. The operations of 1215 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1215 may be performed by the downlink control channel monitoring manager 635 described with reference to FIG. 6.
[0270]
[0273] FIG. 13 shows a flowchart illustrating a method 1300 supporting a technique for signaling user equipment capabilities for PDCCH repetition according to an aspect of the present disclosure. The operations of method 1300 may be implemented by a UE or components thereof described herein. For example, the operations of method 1300 may be performed by the UE 115 described with reference to FIGS. 1-7. In some examples, the UE may execute a set of instructions to control functional elements of the UE to perform the described functionality. Additionally or alternatively, the UE may perform aspects of the described functionality using dedicated hardware.
[0271]
[0274] At 1305, the method may include transmitting, to a base station, UE capabilities for supporting reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs. The operations of 1305 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1305 may be performed by a UE capabilities transmission manager 625 described with reference to FIG. 6.
[0272]
[0275] At 1310, the method may include transmitting, as part of the UE capabilities, an indication that the UE supports reception of multiple related downlink control channel transmissions associated with three or more CORESETs, where the three or more CORESETs are associated with a common BWP. The operations of 1310 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1310 may be performed by the UE capabilities transmission manager 625 described with reference to FIG. 6.
[0273]
[0276] At 1315, the method may include receiving, from the base station based on the transmission of the UE capabilities, a configuration for receiving a plurality of related downlink control channel transmissions, where receiving the configuration is based at least in part on an indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with three or more CORESETs. The operations of 1315 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1315 may be performed by the configuration reception manager 630 described with reference to FIG. 6.
[0274]
[0277] At 1320, the method may include monitoring the downlink control channel according to the configuration. The operations of 1320 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1320 may be performed by the downlink control channel monitoring manager 635 described with reference to FIG. 6.
[0275]
[0278] FIG. 14 shows a flowchart illustrating a method 1400 supporting a technique for signaling user equipment capabilities for PDCCH repetition according to an aspect of the present disclosure. The operations of method 1400 may be implemented by a base station or components thereof described herein. For example, the operations of method 1400 may be performed by base station 105 described with reference to FIGS. 1-3 and 8-11. In some examples, the base station may execute a set of instructions to control functional elements of the base station to perform the described functions. Additionally or alternatively, the base station may use dedicated hardware to perform aspects of the described functions.
[0276]
[0279] At 1405, the method may include receiving, from the UE, UE capabilities of the UE to support reception of a plurality of related downlink control channel transmissions, where the supported plurality of related downlink control channel transmissions include one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs. The operations of 1405 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1405 may be performed by the UE capabilities receive manager 1025 described with reference to FIG. 10.
[0277]
[0280] At 1410, the method may include transmitting a configuration for transmitting a plurality of related downlink control channel transmissions to the UE based at least in part on the receipt of the UE capabilities. The operations of 1410 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1410 may be performed by the configuration transmission manager 1030 described with reference to FIG. 10.
[0278]
[0281] At 1415, the method may include communicating with the UE over the downlink control channel in accordance with the configuration. The operations of 1415 may be performed in accordance with examples disclosed herein. In some examples, aspects of the operations of 1415 may be performed by the UE communications manager 1035 described with reference to FIG. 10.
[0279]
[0282] The following provides a summary of aspects of the present disclosure.
[0280]
[0283] Aspect 1: A method for wireless communication in a UE, the method comprising: transmitting, to a base station, UE capabilities for supporting reception of a plurality of related downlink control channel transmissions, wherein the supported plurality of related downlink control channel transmissions comprise one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs; receiving a configuration for receiving the plurality of related downlink control channel transmissions from the base station based at least in part on the transmission of the UE capabilities; and monitoring the downlink control channel in accordance with the configuration.
[0281]
[0284] Aspect 2: The method of aspect 1, further comprising: transmitting, as part of the UE capabilities, an indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with three or more CORESETs, wherein the three or more CORESETs are associated with a common BWP, and wherein receiving the configuration is based at least in part on the indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with the three or more CORESETs.
[0282]
[0285] Aspect 3: The method of aspect 1 or 2, wherein the UE capabilities indicate that the UE supports reception of inter-slot downlink control channel repetition, and the method further comprises receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set in the first slot is associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, and wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both.
[0283]
[0286] Aspect 4: The method of aspect 3, further comprising: transmitting, as part of the UE capabilities, an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission that can be decoded by the UE, wherein receiving the indication of the first search space set, the second search space set, or both is based at least in part on the quantity of slots.
[0284]
[0287] Aspect 5: The method of any of aspects 1-4, further comprising, as part of the UE capabilities, the UE transmitting an indication of a maximum number of slots supporting one or more linked search space sets for inter-slot downlink control channel repetition according to a search space set periodicity of the one or more linked search space sets.
[0285]
[0288] Aspect 6: The method of any of Aspects 1-5, wherein the UE capabilities indicate that the UE supports reception of intra-slot downlink control channel repetition, and the method further comprises receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, wherein both the first monitoring occasion and the second monitoring occasion are located in a common slot, and wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both.
[0286]
[0289] Aspect 7: The method of aspect 6, further comprising: transmitting, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and wherein receiving the indication of the first search space set, the second search space set, or both is based at least in part on the indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both.
[0287]
[0290] Aspect 8: The method of any of Aspects 1-7, further comprising: as part of the UE capabilities, transmitting an indication of a quantity of downlink control channel monitoring occasions in one or more slots monitored by the UE; and receiving an indication of a first search space set and a second search space set associated with the first search space set from the base station based at least in part on the indication of the quantity of downlink control channel monitoring occasions, wherein monitoring is based at least in part on the indication of the first search space set, the second search space set, or both.
[0288]
[0291] Aspect 9: The method of any of aspects 1-8, further comprising: sending, as part of the UE capabilities, an indication that the UE supports monitoring a set of UE-specific search space sets, a set of common search space sets, or both; and receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set based at least in part on the indication that the UE supports monitoring a set of search space sets associated with the UE, a set of common search space sets, or both, wherein monitoring is based at least in part on the indication of the first search space set, the second search space set, or both.
[0289]
[0292] Aspect 10: The method of any of aspects 1-9, further comprising: as part of the UE capabilities, transmitting an indication of a format for DCI associated with intra-slot downlink control channel repetition, inter-slot downlink control channel repetition, or both; and receiving an indication of a first search space set and a second search space set associated with the first search space set from the base station based at least in part on the indication of the format, wherein monitoring is based at least in part on the indication of the first search space set, the second search space set, or both.
[0290]
[0293] Aspect 11: The method of any of aspects 1-10, further comprising: transmitting, as part of the UE capabilities, an indication that the UE supports reception of a first downlink control channel transmission associated with a first CORESET associated with the first set of parameters and a second downlink control channel transmission associated with the first downlink control channel transmission and a second CORESET associated with the second set of parameters, wherein receiving the configuration is based at least in part on the indication that the UE supports reception of the first downlink control channel transmission and the second downlink control channel transmission.
[0291]
[0294] Aspect 12: The method of aspect 11, wherein the first set of parameters, the second set of parameters, or both comprise a CORESET duration, a CCE-REG mapping type, a precoding granularity, a CORESET pool index, or any combination thereof.
[0292]
[0295] Embodiment 13: The method of embodiment 11 or 12, wherein the first set of parameters is different from the second set of parameters.
[0293]
[0296] Aspect 14: The method of any of aspects 1-13, further comprising: transmitting, as part of the UE capabilities, an indication that the UE supports monitoring of a quantity of control channel candidates per span of resources, a quantity of CCEs per span of resources, or both, wherein receiving the configuration is based at least in part on the indication of the quantity of control channel candidates per span of resources, a quantity of CCEs per span of resources, or both.
[0294]
[0297] Aspect 15: The method of any of aspects 1-14, wherein the UE capabilities indicate that the UE supports reception of SFN downlink control channel transmissions, and the method further comprises receiving, from the base station, a CORESET indication comprising two TCI states, wherein the monitoring is based at least in part on the CORESET indication.
[0295]
[0298] Aspect 16: The method of any of aspects 1-15, wherein the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the method further comprises transmitting, as part of the UE capabilities, an indication of the amount of CORESET in the BWP, wherein receiving the configuration is based at least in part on the indication of the amount of CORESET in the BWP.
[0296]
[0299] Aspect 17: The method of any of Aspects 1-16, further comprising receiving, from the base station based at least in part on the monitoring, a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, wherein the first downlink control channel transmission and the second downlink control channel transmission are transmitted based at least in part on the configuration.
[0297]
[0300] Example 18: The method of any of Examples 1 to 17, wherein the plurality of related downlink control channel transmissions are transmitted in accordance with a 5G radio access technology, an NR access technology, or both.
[0298]
[0301] Aspect 19: The method of any of aspects 1-17, further comprising: transmitting, as part of the UE capabilities, an indication that the UE supports reception of multiple related downlink control channel transmissions within the same span of resources, within different spans of resources, or both, wherein receiving the configuration, monitoring the downlink control channel, or both, is based on the indication.
[0299]
[0302] Aspect 20: A method for wireless communication in a base station, comprising: receiving, from a UE, UE capabilities of the UE for supporting reception of a plurality of related downlink control channel transmissions, wherein the supported plurality of related downlink control channel transmissions comprise one or more of SFN downlink control channel transmissions, intra-slot downlink control channel repetition, or inter-slot downlink control channel repetition, and are associated with one or more CORESETs; transmitting a configuration for transmitting the plurality of related downlink control channel transmissions to the UE based at least in part on the reception of the UE capabilities; and communicating with the UE via the downlink control channel in accordance with the configuration.
[0300]
[0303] Aspect 21: The method of aspect 20, further comprising receiving, as part of the UE capabilities, an indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with three or more CORESETs, wherein the three or more CORESETs are associated with a common BWP, and wherein transmitting the configuration is based at least in part on the indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with the three or more CORESETs.
[0301]
[0304] Aspect 22: The method of aspect 20 or 21, wherein the UE capabilities indicate that the UE supports reception of inter-slot downlink control channel repetition, and the method further comprises transmitting to the UE an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set in the first slot is associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, and wherein communicating is based at least in part on the indication of the first search space set, the second search space set, or both.
[0302]
[0305] Aspect 23: The method of aspect 22, further comprising receiving, as part of the UE capabilities, an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission that can be decoded by the UE, wherein transmitting the indication of the first search space set, the second search space set, or both is based at least in part on the quantity of slots.
[0303]
[0306] Aspect 24: The method of any of aspects 20-23, further comprising, as part of the UE capabilities, receiving an indication of a maximum number of slots that the UE supports for inter-slot downlink control channel repetition according to a search space set periodicity of the one or more linked search space sets.
[0304]
[0307] Aspect 25: The method of any of aspects 20-24, wherein the UE capabilities indicate that the UE supports reception of intra-slot downlink control channel repetition, and the method further comprises transmitting to the UE an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, and wherein both the first monitoring occasion and the second monitoring occasion are located in a common slot, and wherein communicating is based at least in part on the indication of the first search space set, the second search space set, or both.
[0305]
[0308] Aspect 26: The method of aspect 25, further comprising receiving, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and wherein transmitting the indication of the first search space set, the second search space set, or both is based at least in part on the indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both.
[0306]
[0309] Aspect 27: The method of any of aspects 20-26, further comprising: receiving, as part of the UE capabilities, an indication of a quantity of downlink control channel monitoring occasions in one or more slots monitored by the UE; and transmitting, to the UE, an indication of a first search space set and a second search space set associated with the first search space set based at least in part on the indication of the quantity of downlink control channel monitoring occasions, wherein communicating with the UE is based at least in part on the indication of the first search space set, the second search space set, or both.
[0307]
[0310] Aspect 28: The method of any of aspects 20-27, further comprising: receiving, as part of the UE capabilities, an indication that the UE supports monitoring a set of UE-specific search space sets, a set of common search space sets, or both; and, based at least in part on the indication that the UE supports monitoring a set of search space sets associated with the UE, a set of common search space sets, or both, sending to the UE an indication of a first search space set and a second search space set associated with the first search space set, wherein communicating with the UE is based at least in part on the indication of the first search space set, the second search space set, or both.
[0308]
[0311] Aspect 29: The method of any of aspects 20-28, further comprising: receiving, as part of the UE capabilities, an indication of a format for DCI associated with intra-slot downlink control channel repetition, inter-slot downlink control channel repetition, or both; and sending, to the UE based at least in part on the indication of the format, an indication of a first search space set and a second search space set associated with the first search space set, wherein communicating with the UE is based at least in part on the indication of the first search space set, the second search space set, or both.
[0309]
[0312] Aspect 30: The method of any of aspects 20-29, further comprising receiving, as part of the UE capabilities, an indication that the UE supports reception of a first downlink control channel transmission associated with a first CORESET associated with the first set of parameters and a second downlink control channel transmission associated with the first downlink control channel transmission and a second CORESET associated with the second set of parameters, wherein transmitting the configuration is based at least in part on the indication that the UE supports reception of the first downlink control channel transmission and the second downlink control channel transmission.
[0310]
[0313] Aspect 31: The method of aspect 30, wherein the first set of parameters, the second set of parameters, or both comprise a CORESET duration, a CCE-REG mapping type, a precoding granularity, a CORESET pool index, or any combination thereof.
[0311]
[0314] Embodiment 32: The method of embodiment 30 or 31, wherein the first set of parameters is different from the second set of parameters.
[0312]
[0315] Aspect 33: The method of any of aspects 20-32, further comprising receiving, as part of the UE capabilities, an indication that the UE supports monitoring of a quantity of control channel candidates per span of resources, a quantity of CCEs per span of resources, or both, wherein transmitting the configuration is based at least in part on the indication of the quantity of control channel candidates per span of resources, a quantity of CCEs per span of resources, or both.
[0313]
[0316] Aspect 34: The method of any of aspects 20-33, wherein the UE capabilities indicate that the UE supports reception of SFN downlink control channel transmissions, and the method further comprises transmitting, to the UE, an indication of a CORESET comprising two TCI states, wherein communicating is based at least in part on the indication of the CORESET.
[0314]
[0317] Aspect 35: The method of any of aspects 20-34, wherein the UE capabilities indicate that the UE supports receiving SFN downlink control channel transmissions, and the method further comprises receiving, as part of the UE capabilities, an indication of the amount of CORESET in the BWP, wherein transmitting the configuration is based at least in part on the indication of the amount of CORESET in the BWP.
[0315]
[0318] Aspect 36: The method of any of aspects 20-35, wherein communicating with the UE comprises transmitting, to the UE, a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, wherein the first downlink control channel transmission and the second downlink control channel transmission are transmitted based at least in part on the configuration.
[0316]
[0319] Example 37: The method of any of Examples 20 to 36, wherein the plurality of related downlink control channel transmissions are transmitted in accordance with a 5G radio access technology, an NR access technology, or both.
[0317]
[0320] Aspect 38: An apparatus for wireless communication in a UE, comprising: a processor; a memory coupled to the processor; and instructions stored in the memory and executable by the processor to cause the apparatus to perform any of the methods of aspects 1-19.
[0318]
[0321] Aspect 39: An apparatus for wireless communication in a UE, comprising at least one means for performing the method of any of aspects 1-19.
[0319]
[0322] Aspect 40: A non-transitory computer-readable medium storing code for wireless communication in a UE, the code comprising instructions executable by a processor to perform the method of any of aspects 1-19.
[0320]
[0323] Aspect 41: An apparatus for wireless communication in a base station, comprising: a processor; a memory coupled to the processor; and instructions stored in the memory and executable by the processor to cause the apparatus to perform any of the methods of aspects 20 to 37.
[0321]
[0324] Aspect 42: An apparatus for wireless communication in a base station, comprising at least one means for performing the method of any of aspects 20-37.
[0322]
[0325] Aspect 43: A non-transitory computer-readable medium storing code for wireless communication in a base station, the code comprising instructions executable by a processor to implement the method of any of aspects 20-37.
[0323]
[0326] It should be noted that the methods described herein describe possible implementations, that the operations and steps may be rearranged or possibly modified, and that other implementations are possible. Furthermore, aspects from two or more of the methods may be combined.
[0324]
[0327] Although aspects of an LTE, LTE-A, LTE-A Pro, or NR system may be described as examples, and LTE, LTE-A, LTE-A Pro, or NR terminology may be used throughout much of the description, the techniques described herein may be applicable to networks other than LTE, LTE-A, LTE-A Pro, or NR. For example, the techniques described may be applicable to various other wireless communication systems, such as Ultra Mobile Broadband (UMB), Institute of Electrical and Electronics Engineers (IEEE) 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802.20, Flash-OFDM, and other systems and radio technologies, including future systems and radio technologies not explicitly mentioned herein.
[0325]
[0328] The information and signals described herein may be represented using any of a wide variety of technologies and techniques. For example, data, instructions, commands, information, signals, bits, symbols, and chips that may be referred to throughout the description may be represented by voltages, currents, electromagnetic waves, magnetic fields or particles, optical fields or particles, or any combination thereof.
[0326]
[0329] The various example blocks and components described in connection with the disclosure herein may be implemented or performed using a general-purpose processor, a DSP, an ASIC, a CPU, a GPU, an FPGA or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. A general-purpose processor may be a microprocessor, but alternatively, the processor may be any processor, controller, microcontroller, or state machine. A processor may also be implemented as a combination of computing devices (e.g., a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors in conjunction with a DSP core, or any other such configuration).
[0327]
[0330] The functions described herein may be implemented in hardware, software executed by a processor, or a combination thereof. Software should be construed broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executable files, threads of execution, procedures, functions, etc., whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise. If implemented in software executed by a processor, the functions may be stored on or transmitted over a computer-readable medium as one or more instructions or code. Other examples and implementations are within the scope of this disclosure and the appended claims. For example, depending on the nature of the software, the functions described herein may be implemented using software executed by a processor, hardware, hardwiring, or any combination thereof. Features implementing the functions may also be physically located in various locations, including being distributed such that portions of the functions are implemented in different physical locations.
[0328]
[0331] Computer-readable media includes both non-transitory computer storage media and communication media, including any medium that facilitates transfer of a computer program from one place to another. Non-transitory storage media may be any available medium that can be accessed by a general-purpose or special-purpose computer. By way of example, and not limitation, non-transitory computer-readable media may include RAM, ROM, Electrically Erasable Programmable ROM (EEPROM), flash memory, phase-change memory, compact disc (CD) ROM or other optical disk storage, magnetic disk storage or other magnetic storage devices, or any other non-transitory medium that can be used to carry or store desired program code means in the form of instructions or data structures and that can be accessed by a general-purpose or special-purpose computer or a general-purpose or special-purpose processor. Also, any connection is properly termed a computer-readable medium. For example, if software is transmitted from a website, server, or other remote source using coaxial cable, fiber optic cable, twisted pair, digital subscriber line (DSL), or wireless technologies such as infrared, radio, and microwave, the coaxial cable, fiber optic cable, twisted pair, DSL, or wireless technologies such as infrared, radio, and microwave are included within the definition of computer-readable media. As used herein, disk and disc include CDs, laser discs, optical discs, digital versatile discs (DVDs), floppy disks, and Blu-ray discs, where disks typically reproduce data magnetically and discs reproduce data optically with lasers. Combinations of the above are also included within the scope of computer-readable media.
[0329]
[0332] As used herein, including within the claims, "or" in a list of items (e.g., a list of items ending with a phrase such as "at least one of" or "one or more of") indicates an inclusive list, such as, for example, a list of at least one of A, B, or C means A or B or C or AB or AC or BC or ABC (e.g., A and B and C). Also, as used herein, the phrase "based on" is not to be construed as a reference to a closed set of conditions. For example, an example step described as "based on condition A" could be based on both condition A and condition B without departing from the scope of the present disclosure. In other words, as used herein, the phrase "based on" is to be construed in the same manner as the phrase "based at least in part on." As used herein, when used in a list of two or more items, the term "and / or" means that any one of the listed items may be utilized alone, or any combination of two or more of the listed items may be utilized. For example, if a composition is described as including components A, B, and / or C, the composition can include only A, only B, only C, a combination of A and B, a combination of A and C, a combination of B and C, or a combination of A, B, and C.
[0330]
[0333] In the accompanying figures, similar components or features may have the same reference label. Furthermore, various components of the same type may be distinguished by following the reference label with a dash and a second label that distinguishes between the similar components. If only a first reference label is used herein, the description is applicable to any of the similar components having the same first reference label, regardless of a second reference label or other subsequent reference label.
[0331]
[0334] The description set forth herein with reference to the accompanying drawings describes exemplary configurations and does not necessarily represent every example that may be implemented or fall within the scope of the claims. As used herein, the term "example" means "serving as an example, instance, or illustration" and does not mean "preferred" or "advantageous over other examples." The detailed description includes specific details for the purpose of providing an understanding of the described techniques. However, these techniques may be practiced without these specific details. In some instances, known structures and devices are shown in block diagram form to avoid obscuring the concepts of the described examples.
[0332]
[0335] The description herein is provided to enable any person skilled in the art to make or use the disclosure. Various modifications of the disclosure will be apparent to those skilled in the art, and the general principles defined herein may be applied to other variations without departing from the scope of the disclosure. Thus, the disclosure is not limited to the examples and designs described herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein. The inventions described in the claims of the present application as originally filed are set forth below. [C1] 1. A method for wireless communication in a user equipment (UE), comprising: transmitting, to a base station, a UE capability to support reception of a plurality of related downlink control channel transmissions, wherein the supported plurality of related downlink control channel transmissions comprise one or more of a single frequency network downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more control resource sets; receiving, from the base station based at least in part on the UE capability transmission, configuration for receiving the plurality of associated downlink control channel transmissions; monitoring a downlink control channel in accordance with said configuration; A method comprising: [C2] transmitting, as part of the UE capabilities, an indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with three or more control resource sets, wherein the three or more control resource sets are associated with a common bandwidth part, and wherein receiving the configuration is based at least in part on the indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with the three or more control resource sets. The method described in C1. [C3] The UE capability indicates that the UE supports reception of intra-slot downlink control channel repetition, and the method further comprises: receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, wherein both the first monitoring occasion and the second monitoring occasion are located in a common slot, and wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both. The method described in C1. [C4] transmitting, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and wherein receiving the indication of the first search space set, the second search space set, or both is based at least in part on the indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both. The method described in C3. [C5] sending, as part of the UE capabilities, an indication that the UE supports monitoring a set of UE-specific search space sets, a set of common search space sets, or both; The method of claim 1, further comprising receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set based at least in part on the indication that the UE supports the monitoring of the set of search space sets associated with the UE, the set of common search space sets, or both, wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both. [C6] transmitting, as part of the UE capabilities, an indication that the UE supports monitoring of a quantity of control channel candidates per span of resources, a quantity of control channel elements per span of resources, or both, wherein receiving the configuration is based at least in part on the indication of the quantity of control channel candidates per span of resources, the quantity of control channel elements per span of resources, or both. The method described in C1. [C7] The UE capability indicates that the UE supports reception of a single frequency network downlink control channel transmission, and the method further comprises: receiving, from the base station, an indication of a control resource set comprising two transmission configuration indicator states, wherein the monitoring is based at least in part on the indication of the control resource set. The method described in C1. [C8] transmitting, as part of the UE capabilities, an indication that the UE supports reception of multiple related downlink control channel transmissions within the same span of resources, within different spans of resources, or both, wherein receiving the configuration, monitoring the downlink control channel, or both, is based at least in part on the indication. The method described in C1. [C9] The UE capability indicates that the UE supports reception of inter-slot downlink control channel repetition, and the method further comprises: receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set in a first slot is associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, and wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both. The method described in C1. [C10] transmitting, as part of the UE capabilities, an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission that can be decoded by the UE, wherein receiving the indication of the first search space set, the second search space set, or both is based at least in part on the quantity of slots. The method described in C9. [C11] transmitting, as part of the UE capabilities, an indication of a maximum number of slots that the UE supports for inter-slot downlink control channel repetition according to a search space set periodicity of the one or more linked search space sets. The method of C1, further comprising: [C12] transmitting, as part of the UE capabilities, an indication of a quantity of downlink control channel monitoring occasions in one or more slots monitored by the UE; receiving an indication of a first search space set and a second search space set associated with the first search space set from the base station based at least in part on the indication of the amount of downlink control channel monitoring occasions, wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both; The method of C1, further comprising: [C13] transmitting, as part of the UE capabilities, an indication of a format for downlink control information associated with intra-slot downlink control channel repetition, inter-slot downlink control channel repetition, or both; The method of claim 1, further comprising receiving an indication of a first search space set and a second search space set associated with the first search space set from the base station based at least in part on the indication of the format, wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both. [C14] transmitting, as part of the UE capabilities, an indication that the UE supports reception of a first downlink control channel transmission associated with a first control resource set associated with a first set of parameters and a second downlink control channel transmission associated with the first downlink control channel transmission and associated with a second control resource set associated with a second set of parameters, wherein receiving the configuration is based at least in part on the indication that the UE supports reception of the first downlink control channel transmission and the second downlink control channel transmission. The method described in C1. [C15] The method of claim 14, wherein the first set of parameters, the second set of parameters, or both comprise a control resource set duration, a control channel element-resource element group mapping type, a precoding granularity, a control resource set pool index, or any combination thereof. [C16] The method of C14, wherein the first set of parameters is different from the second set of parameters. [C17] The UE capability indicates that the UE supports reception of a single frequency network downlink control channel transmission, and the method further comprises: transmitting, as part of the UE capabilities, an indication of a quantity of control resource sets within a bandwidth part, wherein receiving the configuration is based at least in part on the indication of the quantity of control resource sets within the bandwidth part. The method described in C1. [C18] receiving, from the base station based at least in part on the monitoring, a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, wherein the first downlink control channel transmission and the second downlink control channel transmission are transmitted based at least in part on the configuration. The method described in C1. [C19] The method of C1, wherein the plurality of related downlink control channel transmissions are transmitted in accordance with a fifth generation radio access technology, a new radio access technology, or both. [C20] 1. A method for wireless communication in a base station, comprising: receiving, from a user equipment (UE), a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, wherein the supported plurality of related downlink control channel transmissions comprise one or more of a single frequency network downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more control resource sets; transmitting, to the UE based at least in part on receipt of the UE capabilities, a configuration for transmitting the plurality of associated downlink control channel transmissions; communicating with the UE via a downlink control channel in accordance with the configuration; A method comprising: [C21] receiving, as part of the UE capabilities, an indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with three or more control resource sets, wherein the three or more control resource sets are associated with a common bandwidth part, and wherein transmitting the configuration is based at least in part on the indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with the three or more control resource sets. The method described in C20. [C22] The UE capability indicates that the UE supports reception of intra-slot downlink control channel repetition, and the method further comprises: transmitting to the UE an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, wherein both the first monitoring occasion and the second monitoring occasion are located in a common slot, and wherein the communicating is based at least in part on the indication of the first search space set, the second search space set, or both. The method described in C20. [C23] receiving, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in a time domain, a frequency domain, or both, and wherein transmitting the indication of the first search space set, the second search space set, or both is based at least in part on the indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both. The method described in C22. [C24] receiving, as part of the UE capabilities, an indication that the UE supports monitoring a set of UE-specific search space sets, a set of common search space sets, or both; The method of C20, further comprising: sending an indication to the UE of a first search space set and a second search space set associated with the first search space set based at least in part on the indication that the UE supports the monitoring of the set of search space sets associated with the UE, the set of common search space sets, or both; and wherein communicating with the UE is based at least in part on the indication of the first search space set, the second search space set, or both. [C25] The UE capability indicates that the UE supports reception of inter-slot downlink control channel repetition, and the method further comprises: transmitting to the UE an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set in a first slot is associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, and wherein the communicating is based at least in part on the indication of the first search space set, the second search space set, or both. The method described in C20. [C26] receiving, as part of the UE capabilities, an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission that can be decoded by the UE, wherein transmitting the indication of the first search space set, the second search space set, or both is based at least in part on the quantity of slots. The method described in C25. [C27] receiving, as part of the UE capabilities, an indication of a maximum number of slots that the UE supports for inter-slot downlink control channel repetition according to a search space set periodicity of the one or more linked search space sets. The method of C20, further comprising: [C28] receiving an indication of a quantity of downlink control channel monitoring occasions in one or more slots monitored by the UE as part of the UE capabilities; sending an indication of a first search space set and a second search space set associated with the first search space set to the UE based at least in part on the indication of the amount of downlink control channel monitoring occasions, wherein communicating with the UE is based at least in part on the indication of the first search space set, the second search space set, or both; The method of C20, further comprising: [C29] 1. An apparatus for wireless communication in a user equipment (UE), comprising: at least one processor; a memory coupled to the at least one processor, the memory comprising: transmitting, to a base station, a UE capability to support reception of a plurality of related downlink control channel transmissions, wherein the supported plurality of related downlink control channel transmissions comprise one or more of a single frequency network downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more control resource sets; receiving, from the base station based at least in part on the UE capability transmission, configuration for receiving the plurality of associated downlink control channel transmissions; monitoring a downlink control channel in accordance with said configuration; 4. An apparatus comprising: a processor configured to: [C30] 1. An apparatus for wireless communication at a base station, comprising: at least one processor; a memory coupled to the at least one processor, the memory comprising: receiving, from a user equipment (UE), a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, wherein the supported plurality of related downlink control channel transmissions comprise one or more of a single frequency network downlink control channel transmission, an intra-slot downlink control channel repetition, or an inter-slot downlink control channel repetition, and are associated with one or more control resource sets; transmitting, to the UE based at least in part on receipt of the UE capabilities, a configuration for transmitting the plurality of associated downlink control channel transmissions; communicating with the UE via a downlink control channel in accordance with the configuration; 4. An apparatus comprising: a processor configured to:
Claims
1. 1. A method for wireless communication in a user equipment (UE), comprising: transmitting, to a base station, a UE capability to support reception of a plurality of related downlink control channel transmissions, wherein the plurality of supported related downlink control channel transmissions comprise intra-slot downlink control channel repetition and are associated with one or more control resource sets; receiving, from the base station based at least in part on the UE capability transmission, configuration for receiving the plurality of associated downlink control channel transmissions; monitoring a downlink control channel in accordance with said configuration; Equipped with the receiving comprises receiving an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, wherein both the first monitoring occasion and the second monitoring occasion are located in a common slot; 11. The method of claim 10, wherein transmitting the UE capabilities includes transmitting an indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and wherein the monitoring is based at least in part on the indication.
2. transmitting, as part of the UE capabilities, an indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with three or more control resource sets, wherein the three or more control resource sets are associated with a common bandwidth part, and wherein receiving the configuration is based at least in part on the indication that the UE supports reception of a plurality of related downlink control channel transmissions associated with the three or more control resource sets. The method of claim 1.
3. sending, as part of the UE capabilities, an indication that the UE supports monitoring a set of UE-specific search space sets, a set of common search space sets, or both; 2. The method of claim 1, further comprising: receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, based at least in part on the indication that the UE supports the monitoring of the set of search space sets associated with the UE, the set of common search space sets, or both; and wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both.
4. transmitting, as part of the UE capabilities, an indication that the UE supports monitoring of a quantity of control channel candidates per span of resources, a quantity of control channel elements per span of resources, or both, wherein receiving the configuration is based at least in part on the indication of the quantity of control channel candidates per span of resources, the quantity of control channel elements per span of resources, or both. The method of claim 1.
5. The UE capability indicates that the UE supports reception of a single frequency network downlink control channel transmission, and the method further comprises: receiving, from the base station, an indication of a control resource set comprising two transmission configuration indicator states, wherein the monitoring is based at least in part on the indication of the control resource set. The method of claim 1.
6. transmitting, as part of the UE capabilities, an indication that the UE supports reception of multiple related downlink control channel transmissions within the same span of resources, within different spans of resources, or both, wherein receiving the configuration, monitoring the downlink control channel, or both, is based at least in part on the indication. The method of claim 1.
7. The UE capability indicates that the UE supports reception of inter-slot downlink control channel repetition, and the method comprises: receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set in a first slot is associated with a second monitoring occasion of the second search space set in a second slot different from the first slot, wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both; and optionally transmitting, as part of the UE capabilities, an indication of a quantity of slots between a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission that can be decoded by the UE, wherein receiving the indication of the first search space set, the second search space set, or both is based at least in part on the quantity of slots. The method of claim 1.
8. transmitting, as part of the UE capabilities, an indication of a maximum number of slots that the UE supports for inter-slot downlink control channel repetition according to a search space set periodicity of the one or more linked search space sets. or transmitting, as part of the UE capabilities, an indication of the amount of downlink control channel monitoring occasions in one or more slots monitored by the UE; receiving an indication of a first search space set and a second search space set associated with the first search space set from the base station based at least in part on the indication of the amount of downlink control channel monitoring occasions, wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both; The method of claim 1 further comprising:
9. transmitting, as part of the UE capabilities, an indication of a format for downlink control information associated with intra-slot downlink control channel repetition, inter-slot downlink control channel repetition, or both; receiving an indication of a first search space set and a second search space set associated with the first search space set from the base station based at least in part on the indication of the format, wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both; or transmitting, as part of the UE capabilities, an indication that the UE supports reception of a first downlink control channel transmission associated with a first control resource set associated with a first set of parameters and a second downlink control channel transmission associated with the first downlink control channel transmission and associated with a second control resource set associated with a second set of parameters, wherein receiving the configuration is based at least in part on the indication that the UE supports reception of the first downlink control channel transmission and the second downlink control channel transmission. The method of claim 1 further comprising:
10. 10. The method of claim 9, wherein the first set of parameters, the second set of parameters, or both comprise a control resource set duration, a control channel element to resource element group mapping type, a precoding granularity, a control resource set pool index, or any combination thereof, or wherein the first set of parameters differs from the second set of parameters.
11. The UE capability indicates that the UE supports reception of a single frequency network downlink control channel transmission, and the method comprises: transmitting an indication of an amount of control resource sets within a bandwidth part as part of the UE capabilities, wherein receiving the configuration is based at least in part on the indication of the amount of control resource sets within the bandwidth part; or the plurality of related downlink control channel transmissions are transmitted in accordance with a fifth generation radio access technology, a new radio access technology, or both; The method of claim 1.
12. receiving, from the base station based at least in part on the monitoring, a first downlink control channel transmission and a second downlink control channel transmission associated with the first downlink control channel transmission, wherein the first downlink control channel transmission and the second downlink control channel transmission are transmitted based at least in part on the configuration. The method of claim 1.
13. 1. A method for wireless communication in a base station, comprising: receiving, from a user equipment (UE), a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, wherein the plurality of supported related downlink control channel transmissions comprise intra-slot downlink control channel repetition and are associated with one or more control resource sets; transmitting, to the UE based at least in part on receipt of the UE capabilities, a configuration for transmitting the plurality of associated downlink control channel transmissions; communicating with the UE via a downlink control channel in accordance with the configuration; Equipped with receiving, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within a first monitoring occasion of a first search space set, a second monitoring occasion of a second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both; transmitting to the UE, based at least in part on the received indication, includes an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, and wherein both the first monitoring occasion and the second monitoring occasion are located in a common slot. A method characterized by
14. 1. An apparatus for wireless communication in a user equipment (UE), comprising: at least one processor; a memory coupled to the at least one processor, the memory comprising: transmitting, to a base station, a UE capability to support reception of a plurality of related downlink control channel transmissions, wherein the plurality of supported related downlink control channel transmissions comprise intra-slot downlink control channel repetition and are associated with one or more control resource sets; receiving, from the base station based at least in part on the UE capability transmission, configuration for receiving the plurality of associated downlink control channel transmissions; monitoring a downlink control channel in accordance with said configuration; storing instructions executable by the at least one processor to cause the device to perform receiving, from the base station, an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, wherein both the first monitoring occasion and the second monitoring occasion are located in a common slot, and wherein the monitoring is based at least in part on the indication of the first search space set, the second search space set, or both; transmitting, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and wherein receiving the indication of the first search space set, the second search space set, or both is based at least in part on the indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both. A device characterized by:
15. 1. An apparatus for wireless communication at a base station, comprising: at least one processor; a memory coupled to the at least one processor, the memory comprising: receiving, from a user equipment (UE), a UE capability of the UE to support reception of a plurality of related downlink control channel transmissions, wherein the plurality of supported related downlink control channel transmissions comprise intra-slot downlink control channel repetition and are associated with one or more control resource sets; transmitting, to the UE based at least in part on receipt of the UE capabilities, a configuration for transmitting the plurality of associated downlink control channel transmissions; communicating with the UE via a downlink control channel in accordance with the configuration; storing instructions executable by the at least one processor to cause the device to perform transmitting to the UE an indication of a first search space set and a second search space set associated with the first search space set, wherein a first monitoring occasion of the first search space set is associated with a second monitoring occasion of the second search space set, wherein both the first monitoring occasion and the second monitoring occasion are located in a common slot, and wherein the communicating is based at least in part on the indication of the first search space set, the second search space set, or both. receiving, as part of the UE capabilities, an indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both, wherein the first monitoring occasion and the second monitoring occasion at least partially overlap in the time domain, the frequency domain, or both, and wherein transmitting the indication of the first search space set, the second search space set, or both is based at least in part on the indication that the UE supports reception of downlink control channel transmissions received within the first monitoring occasion of the first search space set, the second monitoring occasion of the second search space set, or both. A device characterized by:
Citation Information
Patent Citations
Control channel monitoring capability for low latency communications
WO2020209953A1